US6387639B1 - Ma family polypeptides and anti-Ma antibodies - Google Patents
Ma family polypeptides and anti-Ma antibodies Download PDFInfo
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- US6387639B1 US6387639B1 US09/189,527 US18952798A US6387639B1 US 6387639 B1 US6387639 B1 US 6387639B1 US 18952798 A US18952798 A US 18952798A US 6387639 B1 US6387639 B1 US 6387639B1
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- family polypeptide
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Classifications
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/53—Immunoassay; Biospecific binding assay; Materials therefor
- G01N33/574—Immunoassay; Biospecific binding assay; Materials therefor for cancer
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K16/00—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
- C07K16/18—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
- C07K16/28—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K16/00—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
- C07K16/18—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
- C07K16/28—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants
- C07K16/30—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants from tumour cells
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/68—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving proteins, peptides or amino acids
- G01N33/6893—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving proteins, peptides or amino acids related to diseases not provided for elsewhere
- G01N33/6896—Neurological disorders, e.g. Alzheimer's disease
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K2317/00—Immunoglobulins specific features
- C07K2317/20—Immunoglobulins specific features characterized by taxonomic origin
- C07K2317/21—Immunoglobulins specific features characterized by taxonomic origin from primates, e.g. man
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S436/00—Chemistry: analytical and immunological testing
- Y10S436/811—Test for named disease, body condition or organ function
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S436/00—Chemistry: analytical and immunological testing
- Y10S436/815—Test for named compound or class of compounds
Definitions
- PLE paraneoplastic limbic encephalitis
- PLE is likely underdiagnosed.
- symptoms of PLE can be attributed to other complications, including metastases to the brain, toxic and metabolic encephalopathy, infections, and side effects of cancer therapy.
- PLE precedes the detection of the tumor, complicating even more its clinical recognition (Dalmau, J. et al, Medicine 71:59-72 (1992); Alamowitch, S. et al., Brain 120:923-928 (1997)).
- the finding of abnormalities involving the mesial temporal lobes on MRI studies may raise the suspicion of PLE, but does not establish the diagnosis.
- Some paraneoplastic syndromes affecting the nervous system are associated with antibodies that react with neuronal proteins and the causal tumor (onconeuronal antigens) (Greenlee, J. E. , Ann. Neurol 12:102 (1982); Graus, F. et al., Neurology 35:538-543 (1985); Budde-Steffen, C. et al., Ann. Neurol. 23:528-531 (1988); Dalmau, J., and Posner, J. B., Semin. Oncol. 24:318-328 (1997)).
- Several of these antibodies are markers of specific neurologic syndromes associated with distinct types of cancer (Furneaux, H. M. et al., New Engl. J. Med.
- the current invention pertains to isolated Ma family proteins, particularly Ma1 (SEQ ID NO:4), Ma2 (SEQ ID NO:7), Ma3 (SEQ ID NO:9), Ma4 (SEQ ID NO:11) and Ma5 (SEQ ID NO:13), as well as active or functional derivatives or fragments of the Ma family polypeptides.
- the invention also pertains to nucleic acids encoding Ma family polypeptides, as well as nucleic acid constructs comprising the nucleic acid molecules described herein operatively linked to a regulatory sequence, and to recombinant host cells comprising the nucleic acid molecules described herein operatively linked to a regulatory sequence.
- the invention also pertains to isolated antibodies, or antigen-binding fragments thereof, which selectively bind to Ma family polypeptides or active derivatives or fragments thereof.
- the invention further pertains to methods of diagnosing a paraneoplastic syndrome in an individual, by assessing a test sample (e.g., of bodily fluid or tissue, or of antibodies isolated from a bodily fluid or tissue), for the presence, absence, or amount of antibodies that bind to a Ma family polypeptide such as Ma1 and/or Ma2.
- a test sample e.g., of bodily fluid or tissue, or of antibodies isolated from a bodily fluid or tissue
- the presence of antibodies that bind to a Ma family polypeptide is indicative of the presence of a paraneoplastic syndrome; the absence of antibodies that bind to a Ma family polypeptide is indicative of the absence of a paraneoplastic syndrome.
- the invention additionally pertains to methods of diagnosing a neoplasm in an individual, by assessing a test sample (e.g., of bodily fluid or tissue, or of antibodies isolated from a bodily fluid or tissue), for the presence, absence, or amount of antibodies that bind to a Ma family polypeptide such as Ma1 and/or Ma2.
- a test sample e.g., of bodily fluid or tissue, or of antibodies isolated from a bodily fluid or tissue
- the presence of antibodies that bind to a Ma family polypeptide is indicative of the presence of a neoplasm; the absence of antibodies that bind to a Ma family polypeptide is indicative of the absence of a neoplasm.
- FIGS. 1A-1C depict the cDNA (SEQ ID NO:3) and putative amino acid sequence (SEQ ID NO:4) for Ma1.
- FIGS. 2A-2B depict the cDNA (SEQ ID NO:6) and putative amino acid sequence (SEQ ID NO:7) for Ma2.
- FIGS. 3A-3B depict the homology between Ma1 cDNA (SEQ ID NO:3) and Ma2 cDNA (SEQ ID NO:6) and mouse cDNA (SEQ ID NO:14).
- FIG. 4 depicts a summary of the clinical-inmmunological associations of antibodies to Ma1 and Ma2 to paraneoplastic syndromes.
- FIGS. 5A-5B depict the cDNA (SEQ ID NO:8) and putative amino acid sequence (SEQ ID NO:9) for Ma3.
- FIGS. 6A-6C depict cDNA (SEQ ID NO:10) and putative amino acid sequence (SEQ ID NO:11) for Ma4.
- FIGS. 7A-7E depict cDNA (SEQ ID NO:12) and putative amino acid sequence (SEQ ID NO:13) for Ma5.
- the present invention relates to Ma family proteins, nucleic acids that encode Ma family proteins, and the relationship of the proteins to paraneoplastic syndromes. As described herein, Applicants have identified five proteins, Ma1, Ma2, Ma3, Ma4 and Ma5, and nucleic acids encoding them.
- Ma1 is a 37 kilodalton protein that is expressed in brain and testis; the presence of antibodies to Ma1 (also referred to herein as “anti-Ma antibodies”) is associated with paraneoplastic syndromes, particularly those affecting the brainstem or cerebellum.
- Ma2 is a 40 kilodalton protein that is expressed in brain; the presence of antibodies to Ma2 (also referred to herein as “anti-Ta antibodies”) is associated particularly with testicular cancer and the paraneoplastic syndromes paraneoplastic limbic encephalitis (PLE) and brainstem encephalitis (BE).
- Ma3 is a 21 kilodalton protein; Ma4 is a 36 kilodalton protein; and Ma5 is a 56 kilodalton protein.
- the invention pertains to isolated Ma family polypeptides, as well as to polypeptide products encoded by nucleotide sequences described herein.
- polypeptide refers to a polymer of amino acids, and not to a specific length; thus, peptides, oligopeptides and proteins are included within the definition of a polypeptide.
- a “Ma family polypeptide,” as used herein, refers to a polypeptide that is expressed by brain and/or testis, and that shares significant identity with Ma1, Ma2, Ma3, Ma4, and/or Ma5.
- a polypeptide that “shares significant identity” with is a polypeptide that has approximately 75% amino acid identity with Ma1, Ma2, Ma3, Ma4 and/or Ma5.
- Polypeptides exhibiting lower levels of identity are also useful and can be considered to be Ma family polypeptides, particular if they exhibit high, e.g., at least about 80%, more preferably at least about 90%, and even more preferably at least about 95%, amino acid identity with Ma1, Ma2, Ma3, Ma4 and/or Ma5 over one or more particular domains of the polypeptide.
- polypeptides sharing high degrees of identity over domains necessary for particular activities, including antibody binding activity are included herein.
- the Ma family polypeptide is Ma1 (SEQ ID NO:4), Ma2 (SEQ ID NO:7), Ma3 (SEQ ID NO:9), Ma4 (SEQ ID NO:11), or Ma5 (SEQ ID NO:13).
- the term, “Ma family polypeptide,” also includes a polypeptide that is expressed by brain and/or testis, and that is recognized by antibodies that specifically bind to Ma1, Ma2, Ma3, Ma4, and/or Ma5.
- the Ma family polypeptide of the invention can be partially or substantially purified (e.g., purified to homogeneity).
- the Ma family polypeptides of the present invention can be isolated or purified (e.g., to homogeneity) from recombinant cell culture by a variety of processes.
- a polypeptide that is “isolated” is substantially free of naturally associated components, such as by separation from the components which accompany it in its natural state.
- a polypeptide which is chemically synthesized, or synthesized in a cellular system different from the cell in which it naturally originates will be substantially free of naturally associated components, and thus, is considered to be “isolated”.
- Methods of isolation include, but are not limited to, anion or cation exchange chromatography, ethanol precipitation, polyacrylamide gel electrophoresis, affinity chromatography and high performance liquid chromatography (HPLC). The particular method used will depend upon the properties of the polypeptide and the selection of the host cell; appropriate methods will be readily apparent to those skilled in the art.
- the amino acid sequence of the Ma family polypeptide can be that of the naturally-occurring polypeptide (e.g., Ma1, SEQ ID NO:4, Ma2, SEQ ID NO:7, Ma3, SEQ ID NO:9, Ma4, SEQ ID NO:11, or Ma5, SEQ ID NO:13) or can comprise alterations therein.
- Such alterations include conservative or non-conservative amino acid substitutions, additions and deletions of one or more amino acids; however, such alterations should preserve at least one activity of the Ma family polypeptide, i.e., the altered or mutant polypeptide should be an active or functional derivative of the naturally-occurring polypeptide.
- the mutation(s) can preferably preserve the three dimensional configuration of an antibody binding site of the native polypeptide.
- the fragment retains other immunological activities, such as immunogenic function, as well as sharing of immunological epitopes for binding.
- the presence or absence of Ma family polypeptide activity can be determined by various standard functional assays including, but not limited to, assays for binding of anti-Ma antibodies (i.e., antibodies to Ma1 or Ma2) or anti-Ta antibodies (i.e., antibodies to Ma2) to the polypeptide.
- amino acids which are essential for the function of the Ma family polypeptide can be identified by methods known in the art. Particularly useful methods include identification of conserved amino acids in the superfamily of immunoglobulin genes, site-directed mutagenesis and alanine-scanning mutagenesis (for example, Cunningham and Wells, Science 244:1081-1085 (1989)), crystallization and nuclear magnetic resonance.
- the altered polypeptides produced by these methods can be tested for particular biologic activities, including immunogenicity and antigenicity.
- amino acid alterations can be made on the basis of several criteria, including hydrophobicity, basic or acidic character, charge, polarity, size, the presence or absence of a functional group (e.g., —SH or a glycosylation site), and aromatic character. Assignment of various amino acids to similar groups based on the properties above will be readily apparent to the skilled artisan; further appropriate amino acid changes can also be found in Bowie et al. ( Science 247:1306-1310(1990)).
- Ma family polypeptides of the invention include, for example, glycosylations, acetylations, carboxylations, phosphorylations, ubiquitination, labelling (e.g., with radionuclides), enzymatic modifications, incorporation of analogs of an amino acid (including, e.g, natural amino acids), substituted linkages, and other modifications known in the art, both naturally and non-naturally occurring.
- fragments of the isolated polypeptides described herein also relate to fragments of the isolated polypeptides described herein.
- fragment is intended to encompass a portion of a polypeptide described herein which retains one or more functions or biological activities of the isolated polypeptide, as described above (e.g., immunogenic or antigenic function).
- the fragment can be from at least about 20 contiguous amino acids to at least about 200 contiguous amino acids, more preferably at least about 50 amino acids, even more preferably at least about 100 amino acids, even more preferably at least about 150 amino acids.
- the Ma family polypeptide can also be a fusion protein comprising all or a portion of the Ma family polypeptide's amino acid sequence fused to one or more additional components.
- Representative fusion partners include immunoglobulins, bacterial ⁇ -galactosidase, trpE, protein A, ⁇ -lactamase, ⁇ -amylase, alcohol dehydrogenase, and yeast ⁇ mating factor.
- Additional components such as radioisotopes and antigenic tags, can be selected to assist in the isolation or purification of the polypeptide or to extend the half life of the polypeptide; for example, a hexahistidine tag would permit ready purification by nickel chromatography.
- polypeptides of the present invention can be progenitors of the Ma family polypeptide; progenitors are molecules which are cleaved to form an active Ma family polypeptide.
- Ma family polypeptides described herein can be isolated from naturally-occurring sources, chemically synthesized or recombinantly produced.
- a nucleic acid molecule described herein can be used to produce a recombinant form of the encoded polypeptide via microbial or eukaryotic cellular processes.
- Ligating the polynucleotide sequence into a gene construct, such as an expression vector, and transforming or transfecting into hosts, either eukaryotic (yeast, avian, insect, plant or mammalian) or prokaryotic (bacterial cells), are standard procedures used in producing other well known proteins. Similar procedures, or modifications thereof, can be employed to prepare recombinant polypeptides according to the present invention by microbial means or tissue-culture technology.
- Nucleic acid molecules of the present invention can be RNA (e.g., mRNA), or DNA, such as cDNA and genomic DNA.
- DNA molecules can be double-stranded or single-stranded; single stranded RNA or DNA can be either the coding (sense) strand or the non-coding (antisense) strand.
- the nucleic acid molecule comprises at least about 15 nucleotides, more preferably at least about 30 nucleotides, even more preferably about 60 contiguous nucleotides, still more preferably at least about 100 contiguous nucleotides, even more preferably at least about 150 contiguous nucleotides, and even more preferably at least about contiguous 300 nucleotides.
- the nucleic acid molecule can be only that polynucleotide which encodes at least a fragment of the amino acid sequence of the Ma family polypeptide; alternatively, the nucleic acid molecule can include at least a fragment of the nucleic acid encoding the Ma family polypeptide along with additional non-coding sequences such as introns and non-coding 3′ and 5′ sequences (including regulatory sequences, for example). Additionally, the nucleic acid molecule can contain a marker sequence, for example, a nucleotide sequence which encodes a polypeptide, to assist in isolation or purification of the polypeptide.
- sequences include, but are not limited to, those which encode a glutathione-S-transferase (GST) fusion protein and those which encode a hemagglutinin A (HA) peptide marker from influenza.
- the nucleic acid molecule has the sequence encoding Ma1 (SEQ ID NO:3); the sequence encoding Ma2 (SEQ ID NO:6); the sequence encoding Ma3 (SEQ ID NO:8); the sequence encoding Ma4 (SEQ ID NO:10); or the sequence encoding Ma5 (SEQ ID NO:12).
- an “isolated” or “substantially pure” nucleic acid molecule is intended to mean a nucleotide sequence which is not flanked by nucleotide sequences which normally (in nature) flank the gene or nucleotide sequence (as in genomic sequences) and/or has been completely or partially purified from other transcribed sequences (as in a cDNA or RNA library).
- an isolated nucleotide sequence can include a nucleotide sequence which is synthesized chemically or by recombinant means.
- recombinant DNA contained in a vector are included in the definition of “isolated” as used herein.
- isolated nucleotide sequences include recombinant DNA molecules in heterologous host cells, as well as partially or substantially purified DNA molecules in solution.
- isolated nucleotide sequences are also encompassed by “isolated” nucleotide sequences.
- isolated nucleotide sequences are useful in the manufacture of the encoded protein, as probes for isolating homologous sequences (e.g., from other mammalian species), for gene mapping (e.g., by in situ hybridization with chromosomes), or for detecting expression of the Ma family polypeptide in tissue (e.g., human tissue), such as by Northern blot analysis.
- the present invention also pertains to nucleic acid molecules which are not necessarily found in nature but which encode the Ma family polypeptide.
- DNA molecules which comprise a sequence that is different from the naturally-occurring nucleotide sequence but which, due to the degeneracy of the genetic code, encode the Ma family polypeptide of the present invention are the subject of this invention (e.g., a nucleic acid molecule that encodes SEQ ID NO:4, SEQ ID NO:7, SEQ ID NO:9, SEQ ID NO:11, or SEQ ID NO:13).
- the invention also encompasses variations of the nucleotide sequences of the invention, such as those encoding portions, analogues or derivatives of the Ma family polypeptide.
- Such variations can be naturally-occurring, such as in the case of allelic variation, or non-naturally-occurring, such as those induced by various mutagens and mutagenic processes.
- Intended variations include, but are not limited to, addition, deletion and substitution of one or more nucleotides which can result in conservative or non-conservative amino acid changes, including additions and deletions.
- the nucleotide or amino acid variations are silent or conserved; that is, they do not alter the characteristics or activity of the Ma family polypeptide.
- synthetic molecules that mimic nucleic acid molecules in the ability to bind to a designated sequences via hydrogen bonding and other chemical interactions.
- Such molecules include, for example, those in which peptide linkages substitute for phosphate linkages in the backbone of the molecule.
- the invention also relates to fragments of the isolated nucleic acid molecules described herein.
- fragment is intended to encompass a portion of a nucleic acid sequence described herein, such as a portion which encodes a fragment of a Ma family polypeptide as described above.
- a fragment can be a portion of a nucleic acid which is from at least about 15 contiguous nucleotides to at least about 300 contiguous nucleotides or longer in length.
- One or more introns can also be present.
- Such fragments are useful as probes, e.g., for diagnostic methods and also as primers or probes.
- Particularly preferred primers and probes selectively hybridize to the nucleic acid molecule encoding the Ma family polypeptides described herein.
- fragments which encode antigenic regions of the Ma family polypeptides described herein are useful.
- the invention also pertains to nucleic acid molecules which hybridize under medium, and, more preferably, high, stringency hybridization conditions (e.g., for selective hybridization) to a portion of a nucleic acid molecule described herein.
- Appropriate stringency conditions are known to those skilled in the art or can be found in standard texts such as Current Protocols in Molecular Biology , John Wiley & Sons, New York (1998), 6.3.1-6.3.6.
- Such hybridizable nucleic acid molecules are useful as probes and primers for diagnostic applications.
- high stringency hybridization conditions for Southern blotting include conditions with a temperature that is from about 12-20° C. below the calculated Tm (Tm is based upon the nucleotide sequence of the probe and can be calculated for each probe); alternatively, high stringency conditions include low salt conditions.
- nucleic acid molecules that have a substantial identity with the nucleotide sequences described herein.
- nucleic acid molecules which have at least about 60%, more preferably at least about 85%, even more preferably at least about 95%, and still more preferably at least about 99% identity with nucleotide sequences described herein.
- nucleic acid molecules encoding polypeptides having at least one activity of the Ma family polypeptides described herein are particularly preferred nucleic acid molecules encoding a polypeptide having the same or similar immunogenic or antigenic properties as the Ma family polypeptide are within the scope of the invention.
- Nucleic acid molecules which have lower overall homologies are also included herein, provided that they have substantial identity over fragments of the polypeptide.
- the Ma family polypeptides each contain segments (ranging from approximately 15 nucleotides to approximately 100 nucleotides, with segments up to 120 and to 360 nucleotides) having substantial homology (ranging from at least 60% to at least 95%) with one another.
- Ma1 and Ma2 share substantial identity, ranging from 60% to 76.5%, over five separate segments: nucleotides 11-38 of Ma2 and 678-705 of Ma1 (71.4% homology); nucleotides 78-109 of Ma2 and 745-776 of Ma1 (68.8% homology); nucleotides 150-165 of Ma2 and 814-829 of Ma1 (60% homology); nucleotides 184-200 of Ma2 and 846-864 of Ma1 (76.5% homology); and nucleotides 246-341 of Ma2 and 910-1005 of Ma1 (74% homology).
- the substantial homology over several segments indicates that the encoded polypeptides are closely related.
- nucleic acid molecules which similarly have lower overall homology to a Ma family polypeptide, but which have substantial homology to one or more regions of the Ma family polypeptide, are encompassed by the invention.
- the invention also provides expression vectors containing a nucleotide sequence encoding a Ma family polypeptide or active derivative or fragment thereof, operably linked to at least one regulatory sequence.
- Many such vectors are commercially available, and other suitable vectors can be readily prepared by the skilled artisan.
- “Operably linked” is intended to meant that the nucleotide sequence is linked to a regulatory sequence in a manner which allows expression of the nucleotide sequence. Regulatory sequences are art-recognized and are selected to produce a Ma family polypeptide or active derivative thereof.
- regulatory sequence includes promoters, enhancers, and other expression control elements which are described in Goeddel, Gene Expression Technology: Methods in Enzymology 185, Academic Press, San Diego, California (1990).
- native regulatory sequences or regulatory sequences native to the transformed host cell can be employed. It should be understood that the design of the expression vector may depend on such factors as the choice of the host cell to be transformed and/or the type of protein desired to be expressed.
- the polypeptides encoded by the nucleic acid molecules of the present invention can be produced by ligating the cloned gene, or a portion thereof, into a vector suitable for expression in either prokaryotic cells, eukaryotic cells or both (see, for example, Broach, et al., Experimental Manipulation of Gene Expression , ed. M. Inouye (Academic Press, 1983) p. 83; Molecular Cloning: A Laboratory Manual, 2nd Ed., ed. Sambrook et al. (Cold Spring Harbor Laboratory Press, 1989) Chapters 16 and 17).
- expression constructs will contain one or more selectable markers, including, but not limited to, the gene that encodes dihydrofolate reductase and the genes that confer resistance to neomycin, tetracycline, ampicillin, chloramphenicol, kanamycin and streptomycin resistance.
- Vectors can also include, for example, an autonomously replicating sequence (ARS), expression control sequences, ribosome-binding sites, RNA splice sites, polyadenylation sites, transcriptional terminator sequences, secretion signals and mRNA stabilizing sequences.
- ARS autonomously replicating sequence
- Prokaryotic and eukaryotic host cells transformed by the described vectors are also provided by this invention.
- cells which can be transformed with the vectors of the present invention include, but are not limited to, bacterial cells such as E. coli (e.g., E. coli K12 strains), Streptomyces, Pseudomonas, Serratia marcescens and Salmonella typhimurium , insect cells (baculovirus), including Drosophila, fungal cells, such as yeast cells, plant cells and mammalian cells, such as thymocytes, Chinese hamster ovary cells (CHO), and COS cells.
- E. coli e.g., E. coli K12 strains
- Streptomyces e.g., Pseudomonas, Serratia marcescens and Salmonella typhimurium
- insect cells baculovirus
- Drosophila fungal cells
- yeast cells such as yeast cells
- plant cells and mammalian cells
- the host cells can be transformed by the described vectors by various methods (e.g., electroporation, transfection using calcium chloride, rubidium chloride, calcium phosphate, DEAE-dextran, or other substances; microprojectile bombardment; lipofection, infection where the vector is an infectious agent such as a retroviral genome, and other methods), depending on the type of cellular host.
- electroporation transfection using calcium chloride, rubidium chloride, calcium phosphate, DEAE-dextran, or other substances
- microprojectile bombardment e.g., electroporation, transfection using calcium chloride, rubidium chloride, calcium phosphate, DEAE-dextran, or other substances
- lipofection infection where the vector is an infectious agent such as a retroviral genome, and other methods
- nucleic acid molecules of the present invention can be produced, for example, by replication in a suitable host cell, as described above. Alternatively, the nucleic acid molecules can also be produced by chemical synthesis.
- the present invention also relates to isolated antibodies, or antigen-binding fragments, which bind to a Ma family polypeptide (or polypeptides).
- Ma family polypeptide or polypeptides.
- polyclonal and monoclonal antibodies including non-human and human antibodies, humanized antibodies, chimeric antibodies and antigen-binding fragments thereof ( Current Protocols in Immunology , John Wiley & Sons, New York (1994); EP Application 173,494 (Morrison); International Patent Application WO86/01533 (Neuberger); and U.S. Pat. No. 5,225,539 (Winters)) which bind to the described Ma family polypeptides are within the scope of the invention.
- a mammal such as a mouse, rat, hamster or rabbit, can be immunized with an immunogenic form of the Ma family polypeptide (e.g., the protein or a peptide comprising an antigenic fragment of the protein which is capable of eliciting an antibody response).
- an immunogenic form of the Ma family polypeptide e.g., the protein or a peptide comprising an antigenic fragment of the protein which is capable of eliciting an antibody response.
- Techniques for conferring immunogenicity on a protein or peptide include conjugation to carriers or other techniques well known in the art.
- the protein or polypeptide can be administered in the presence of an adjuvant.
- the progress of immunization can be monitored by detection of antibody titers in plasma or serum. Standard ELISA or other immunoassays can be used with the immunogen as antigen to assess the levels of antibody.
- anti-peptide antisera can be obtained, and if desired, polyclonal antibodies can be isolated from the serum.
- Monoclonal antibodies can also be produced by standard techniques which are well known in the art (Kohler and Milstein, Nature 256:495-497 (1975); Kozbar et al., Immunology Today 4:72 (1983); and Cole et al., Monoclonal Antibodies and Cancer Therapy , Alan R. Liss, Inc., pp. 77-96 (1985)).
- the term “antibody” as used herein is intended to include fragments thereof, such as Fab and F(ab) 2 ′.
- Such antibodies in conjunction with a label, such as a radioactive label, can be used to assay for the presence of the expressed protein in a cell from, e.g., a tissue sample.
- a label such as a radioactive label
- Such antibodies can also be used in an immunoabsorption process, such as an ELISA, to isolate the Ma family polypeptide.
- Tissue samples which can be assayed include primate, particularly human, tissues, e.g., differentiated and non-differentiated cells. Examples include brain and testis.
- paraneoplastic syndrome refers to a neurologic disorder that is associated with the presence of a neoplasm (cancer), but is not due to direct invasion of the nervous system by the neoplasm or due to other complications such as side effects of treatment, infections, metabolic and nutritional deficits and cerebrovascular disorders.
- the presence of antibodies that bind to the Ma family polypeptide, Ma1 is indicative of a paraneoplastic syndrome.
- the presence of antibodies that bind to the Ma family polypeptide, Ma2 is indicative of a paraneoplastic syndrome.
- the presence of antibodies that bind to Ma2 is indicative of the paraneoplastic syndrome(s), paraneoplastic limbic encephalitis and/or brainstem encephalitis.
- the presence of antibodies that bind to more than one Ma family polypeptide is also indicative of the presence of a paraneoplastic syndrome.
- antibodies to a Ma family polypeptide(s) may be present in an individual (e.g., at low levels) in the absence of paraneoplastic pathology (i.e., in the absence of a paraneoplastic syndrome); the methods of the invention facilitate identification of the presence of a neoplasm in these individuals as well.
- the presence of antibodies to a Ma family polypeptide is indicative of the presence of a paraneoplastic syndrome, and therefore is indicative of the presence of a neoplasm.
- the presence of antibodies that bind to the Ma family polypeptide Ma1 is indicative of the presence of a neoplasm.
- the neoplasm is breast cancer, colon cancer, lung cancer, testicular cancer, a germ cell tumor or parotid gland cancer.
- the presence of antibodies that bind to the Ma family polypeptide Ma2 e.g., anti-Ta antibodies
- the absence of antibodies to a Ma family polypeptide is indicative of the absence of a paraneoplastic syndrome, and therefore is indicative of the absence of a neoplasm.
- test sample from an individual such as an individual who is suspected of having a paraneoplastic syndrome
- the test sample can also be from an individual who is suspected of having a cancer, but who does not demonstrate a paraneoplastic syndrome.
- the test sample can comprise blood, serum, cerebrospinal fluid, urine, nasal secretion, saliva, or any other bodily fluid or tissue.
- the test sample can comprise antibodies isolated from a sample of bodily fluid or tissue from the individual.
- the isolated antibodies can include a single type of antibody (e.g., IgA, IgD, IgE, IgG or IgM antibodies), or can include all types of antibodies; alternatively, one or more types of antibodies (e.g., IgM antibodies, IgG antibodies, or IgM and IgG antibodies) can be isolated.
- the test sample is a serum sample or a cerebrospinal fluid sample from the individual.
- the test sample is assessed for the presence or absence of antibodies that bind to a Ma family polypeptide (or to more than one Ma family polypeptide).
- one or more of the Ma family polypeptides described above can be used to detect the presence of antibodies to the Ma family polypeptide.
- a Ma family polypeptide sample is used.
- the term, “Ma family polypeptide sample,” as used herein, can be a sample containing a Ma family polypeptide, or active derivative or fragment thereof, as described above.
- the Ma family polypeptide sample can also contain more than one Ma family polypeptide or active derivative or fragment (e.g., a Ma family polypeptide sample containing Ma1 and Ma2).
- the Ma family polypeptide sample comprises Ma1 and/or Ma2.
- the Ma family polypeptide sample can be a sample of isolated Ma family polypeptide(s); alternatively, the Ma family polypeptide sample can be a sample that comprises Ma family polypeptide(s) (e.g., slice(s) of tissue, such as neuronal tissue from human brain or rat brain, or another tissue known to contain the Ma family polypeptide(s), or a homogenate of tissue(s) known to contain the Ma family polypeptide(s)).
- Ma family polypeptide(s) e.g., slice(s) of tissue, such as neuronal tissue from human brain or rat brain, or another tissue known to contain the Ma family polypeptide(s), or a homogenate of tissue(s) known to contain the Ma family polypeptide(s)
- the Ma family polypeptide sample is contacted with the test sample from an individual. Contact of the Ma family polypeptide sample with the test sample from the individual results in a “contacted sample,” which is a mixture of the Ma family polypeptide sample and the test sample.
- the contacted sample is maintained under appropriate conditions to allow binding of antibody to Ma family polypeptide, if such antibody is present in the sample, to the Ma family polypeptide.
- anti-Ma family polypeptide antibody or “anti-Ma family polypeptide autoantibody”, as used herein, refer to antibody that specifically binds to a Ma family polypeptide as described above. The presence or absence of anti-Ma family polypeptide antibody is then assessed.
- the amount of anti-Ma family polypeptide antibodies, if any, that have bound to the Ma family polypeptide in the contacted sample is compared to a reference amount.
- reference amount refers to an amount of anti-Ma family polypeptide antibodies that correlates with a diagnosis of an paraneoplastic syndrome or of a neoplasm.
- a reference amount can be determined, for example, by comparing amounts of anti-Ma family polypeptide antibodies in contacted samples from individuals known to have a paraneoplastic syndrome (e.g., a “positive control sample”), with amounts of anti-Ma family polypeptide antibodies in contacted samples from individuals known not to have a paraneoplastic syndrome (e.g., a “negative control sample” as described below), and determining what amount of antibody correlates with disease.
- a paraneoplastic syndrome e.g., a “positive control sample”
- anti-Ma family polypeptide antibodies in contacted samples from individuals known not to have a paraneoplastic syndrome e.g., a “negative control sample” as described below
- the reference amount can be determined by determining the amounts of anti-Ma family polypeptide antibodies in positive and/or negative control samples concurrently with determining the amount of anti-Ma family polypeptide antibodies in the contacted sample; alternatively, the reference amount can be a historically determined amount (i.e., an amount determined prior to determining the amount of anti-Ma family polypeptide antibodies in the contacted sample).
- a “reference amount” can be an amount of anti-Ma family polypeptide antibody in the test sample that statistically is significantly greater than the amount of anti-Ma family polypeptide antibody in comparable control sample(s).
- an amount of anti-Ma family polypeptide in the test sample is statistically significant when it is two standard deviations greater than the amount of anti-Ma family polypeptide antibody in comparable control samples.
- the amount of different types of antibodies can be compared to the reference amount; alternatively, the amount of one particular type of antibody (e.g., the amount of IgA, IgD, IgE, IgM or IgG antibody) can be compared to the reference amount.
- the antibody is IgG antibody.
- the reference amount is an amount of the same type of antibody as the antibody assessed in the contacted sample: for example, if the sum of the amount of different types of antibodies (i.e., including more than one type of antibody) for the contacted sample is compared to the reference amount, the sum of the amount of those types of antibodies is also used for the reference amount. If the amount of one particular type of antibody (e.g., the amount of IgM or IgG antibodies) in the contacted sample is compared with the reference amount, the amount of that type of antibodies is also used for the reference amount.
- the presence of an amount that is equal to, or greater than, the reference amount correlates with a diagnosis of (is indicative of the presence of) paraneoplastic syndrome. Similarly, the presence of an amount that is equal to, or greater than, the reference amount correlates with the presence of a neoplasm. An amount that is less than the reference amount correlates with (is indicative of) an absence of paraneoplastic syndrome. Similarly, the presence of an amount that is less than the reference amount correlates with the absence of a neoplasm.
- the contacted sample is assayed to determine the amount of anti-Ma family polypeptide antibodies, if any, that have bound to the Ma family polypeptide.
- the assay can determine an amount that is the sum of the amount of different types of antibodies (i.e.,including more than one type of antibody); alternatively, the assay can determine the amount of one particular type of antibody (e.g., the amount of IgA, IgD, IgE, IgM or IgG antibody).
- the contacted sample is assayed to determine the amount of IgM or IgG antibody.
- the amount of anti-Ma family polypeptide antibody in the contacted sample is compared with the amount of anti-Ma family polypeptide antibody in at least one comparable negative control sample (i.e., a sample from an individual who is not afflicted by a paraneoplastic syndrome).
- the negative control sample can be a sample from any individual who is not afflicted with a paraneoplastic syndrome. It is not necessary that the negative control sample be from an individual who is free of disease: for example, the negative control sample can be a sample from an individual who has cancer but no paraneoplastic syndrome.
- a “comparable” negative control sample is a sample of the same type of body fluid or tissue as the test sample; alternatively, if the test sample is antibodies isolated from a sample of fluid or tissue, the comparable negative control sample is a sample of antibodies isolated from the same type of bodily fluid or tissue. More than one control sample can be used.
- the assay of the negative control sample determines the same type of antibody as the assay of the contacted sample: for example, if the sum of the amount of different types of antibodies (i.e., including more than one type of antibody) is detected for the contacted sample, the sum of the amount of those types of antibodies is also determined for the negative control sample.
- the assay determines the amount of one particular type of antibody (e.g., the amount of IgM or IgG antibodies) in the contacted sample, the amount of that type of antibodies is also determined for the negative control sample. In a preferred embodiment, more than one control sample can be used.
- the amount of antibody, or the presence or absence of antibody can be determined by a variety of methods using standard techniques, including enzyme-linked immunosorbent assay (ELISA) or other solid phase immunoassays, radioimmunoassay, nephelometry, electrophoresis, inununofluorescence, Western blot (immunoblot), or other methods (see Ausubel, F. M. et al., eds., Current Protocols in Molecular Biology, John Wiley & Sons, including supplements through 1997, especially units 11.2 (ELISA) and 11.16 (Determination of Specific Antibody Titer)).
- ELISA enzyme-linked immunosorbent assay
- the titer is determined by ELISA; in another preferred embodiment, the amount (or presence or absence) of antibody is determined by Western blot.
- the amount (or presence or absence of antibody) can be determined by using section(s) of neuronal tissue, such as human and/or rat brain, as the Ma family polypeptide sample; the sections are incubated with the test samples, and then presence or absence, or amount, of anti-Ma family polypeptide antibodies, can be assessed by an appropriate method, such as by a detector antibody or indirect immunofluorescence.
- the amount (or presence or absence of antibody) can be determined by using homogenized neuronal tissue, and separating the proteins on a Western blot; the blot is then incubated with the test samples, and then presence or absence, or amount, of anti-Ma family polypeptide antibodies, can be assessed by an appropriate method, such as by a detector antibody or indirect immunofluorescence.
- the presence of a protein band at an appropriate weight e.g., at the molecular weight of the Ma family polypeptide
- the Ma family polypeptide is attached to a solid support.
- the amount of antibody that binds to the Ma family polypeptide sample can be determined using a detector antibody that binds to the anti-Ma family polypeptide antibody.
- Western blotting the presence of greater reactivity in serum of a patient diluted 1:1,000, than in a control sample(s), correlates with a diagnosis of paraneoplastic syndrome; the absence of visible reactivity in serum of a patient diluted 1:1,000, correlates with the absence of paraneoplastic syndrome.
- kits to be used in methods of the invention can include the following components: (1) a Ma family polypeptide sample; and, optionally, (2) labeled detector antibody that binds to antibody, preferably to the anti-Ma family polypeptide antibody.
- Detector antibody can comprise an antibody bound to a detectable agent, such as an enzyme, radioactive molecule, or fluorescent agent. If the detector antibody is bound to an enzyme that reacts with an added substrate to yield a colored product, such as horseradish peroxidase, the kit can also include the substrate.
- the Ma family polypeptide sample in the kit can be adhered to a solid support.
- anti-Ma novel antineuronal antibody
- the sera (or cerebrospinal fluid when available) from 1,705 patients that were sent to be screened for paraneoplastic antineuronal antibodies were used in a study. At the time that these sera were collected, 984 of the patients had a cancer diagnosis.
- Sera used as controls included sera from 52 normal individuals; sera from 96 patients with well characterized paraneoplastic syndromes (44 anti-Hu related encephalomyelitis and sensory neuronopathy; 17 anti-Yo related cerebellar degeneration; 11 Lambert-Eaton myasthenic syndrome with P/Q-type voltage gated calcium-channel antibodies [VGCC]; 2 anti-Ri related cerebellar ataxia and opsoclonus; 6 anti-Tr related cerebellar dysfunction; 5 myasthenia gravis associated with thymoma; and 11 opsoclonus associated with neuroblastoma); sera from 179 patients with cancer (44 testicular, 10 colon, 10 ovarian, 40 lung, 22 breast, 20 brain tumors, and 33 neuro
- Sera were kept frozen at ⁇ 70° C.
- Human nervous system and systemic tissues were obtained from autopsy or biopsy studies of neurologically normal individuals. Fifty three cancer tissues (15 colon, 5 breast, 5 bladder, 3 parotid, 5 neuroblastomas, 5 non-small cell lung cancer, and 15 testicular germ cell tumors) from patients without paraneoplastic symptoms and 13 from patients with antibody associated paraneoplastic disorders (4 ovary, 4 lung, 2 uterus, 1 bladder, 1 larynx and 1 chondrosarcoma) were provided by the Tumor Procurement Service at Memorial Sloan-Kettering Cancer Center.
- Wistar rats were anesthetized and perfused with saline, followed by removal of brain and other tissues. Samples of human and rat tissues were kept at ⁇ 70° C.; other samples from the same tissues were embedded in Optimal Cutting Temperature medium (OCT, Miles Inc, USA) and frozen in isopentane chilled by liquid nitrogen.
- OCT Optimal Cutting Temperature medium
- the IgG from patients' sera was isolated using a protein-G sepharose column (Sigma, St Louis, Missouri) followed by labeling with biotin (Furneaux, H. M. et al., New Engl. J Med. 322:1844-1851 (1990)).
- Nonidet P-40 and protease inhibitors PMSF (50 ⁇ g/ml), aprotinin (1 ⁇ g/ml), pepstatin (1 ⁇ g/ml), and leupeptine (1 ⁇ g/ml) (all from Sigma).
- the reaction was developed with 0.05% diaminobenzidine tetrahydrochloride (Sigma) with 0.01% hydrogen peroxide and 0.5% Triton X-100 in PBS.
- Patient's serum and secondary antibody were diluted in 10% normal goat serum in PBS. Between steps, slides were washed with PBS.
- tissue sections were preincubated with the serum of one of the patients (diluted 1:5) for one hour, followed by incubation with biotinylated IgG isolated from the serum of another patient (diluted 1:25).
- Sera were considered to compete for the same epitopes, when the reactivity of the biotinylated IgG of one patient was abrogated by preincubation of the tissue with serum from another patient.
- Sequence analysis was performed with an automated DNA sequencer (ABI 377) using the dye terminator fluorescence method (Lee, L. G. et al., Nucl. Acids Res. 20:2471-2483 (1992)). Double-stranded DNA was purified using the Qiagen plasmid midi-prep system (Qiagen, Santa Clarita, Calif.) and sequenced on both strands. Internal oligonucleotide primers, as well as SK and KS primers, were used.
- Fusion protein and E. coli protein extracts were obtained by growing an individual colony to an optical density of 0.6 and inducing with 10 mmol/L IPTG for 3 hours at 37° C. Cells were isolated by centrifugation and lysed by resuspension in 0.1% NP-40 and 2% sodium dodecyl sulfate (SDS) in PBS.
- SDS sodium dodecyl sulfate
- Lysates of fusion proteins, or proteins extracted from human and rat tissues were resolved by 10% SDS-polyacrylamide gel electrophoresis and transferred to nitrocellulose (Towbin, H. et al., Proc. Natl. Acad. Sci. USA 76:4350-4 (1979)). After blocking with 5% dry CarnationTM milk, nitrocellulose strips were sequentially incubated with the patient's serum (1:1,000 dilution) for 2 hours, and sheep anti-human horseradish peroxidase-labeled IgG (Amersham, Arlington Heights, Ill. diluted 1:20,000, for one hour.
- Strips were then immersed in an enhanced chemiluminescence solution (Amersham, Arlington, Ill.) for 1 minute, and exposed to Kodak XAR5 film (Sigma). Between steps, strips were washed with 0.05% Tween-20 in PBS. All incubations were done at room temperature (RT).
- RT room temperature
- oligonucleotide probes were end-labeled with [ ⁇ - 32 P] ATP using T4 polynucleotide kinase.
- probe for Ma1 the following oligonucleotide was used: 5′-GAAACCCAAGGACACGGG-3′ (SEQ ID NO:1; cDNA base pairs 647-630), and as probe for ⁇ -actin, the following oligonucleotide was used: 5′-GTCTTTGCGGATGTCCACG-3′ (SEQ ID NO:2).
- Labeled probes were extracted with phenol chloroform and purified over a G-25 sephadex column.
- IVIg Plasma Dead, from Neuronal loss & gliosis F, 58 unsteadiness, eye movements; (Ma Ag+) exchange, neurologic involving: brainstem, pseudobulbar limited adduction of Prednisone disease Purkinje cells, the dentate affect left eye, dysarthria, nucleus of the cerebellum. myokymia and T-cell infiltrates & micro- decreased sensation glial nodules: brainstem on left side of the (mainly medulla), cerebel- face, wide-base gait. lar white matter, hypothala- Mild cognitive mus, substantia innominata. deficit.
- PNS Paraneoplastic symptoms
- Ma Ags Ma antigens
- IVIg Intravenous immunoglobulin
- the autopsy of the other patient was restricted to brain, and the possibility of clinically undetected systemic metastases could not be ruled out.
- the tectal and tegmental regions of the midbrain, pontine tegmentum, and medulla showed extensive perivascular and interstitial inflammatory infiltrates with microglial nodules. Severe neuronal loss and gliosis were found in the inferior olivary nucleus and surrounding tissue. There was also focal loss of Purkinje cells and of neurons of the dentate nucleus, with Bergmann gliosis. Inflammatory infiltrates were found in the deep cerebellar white matter. Milder perivascular and interstitial lymphocytic infiltrates were observed in the hypothalamus and substantia innominata.
- Anti-Ma Antibodies Specifically React With Normal Brain and Testis
- the sera of the above 4 patients reacted with all neurons of the central and peripheral nervous system, including sympathetic and dorsal root ganglia, and myenteric plexus, in a characteristic pattern.
- Anti-Ma antibodies reacted mainly within subnuclear elements (nuclei and nucleoli) of neurons, and to a lesser degree with the cytoplasm.
- Non-neuronal cells did not react. Reactivity was not affected by formalin, methanol, or acetone fixation, but it was better preserved in frozen tissues than in paraffin embedded tissues.
- the neuronal nuclei showed a speckled pattern of reactivity, and in many neurons it appeared confined to the nucleoli; in contrast, the cytoplasm reacted in a mild and diffuse, but not granular, pattern.
- the reactivity appeared more concentrated to the nucleoli of neurons, and there was also mild labeling of the cytoplasm.
- Human and rat systemic tissues including lung, liver, kidney, spleen, thyroid gland, pancreas, small intestine, colon, heart, skeletal muscle and ovary did not react with anti-Ma IgG, but testicular germ cells, especially spermatocytes and early spermatids, did react.
- Anti-Ma Antibodies Specifically Recognize Paraneoplastic Tumors
- Paraffin-embedded tumor tissue was obtained from 3 of the 4 patients with anti-Ma antibodies. After tissue deparaffination and antigen retrieval (Cattoretti, G. et al., J. Pathol. 171:83-98 (1993)), all 3 tumors (adenocarcinoma of the breast, adenocarcinoma of the colon and parotid cancer) were found to express antigens identified by anti-Ma IgG antibodies, but in contrast to neurons the reactivity was concentrated in the cytoplasm. Anti-Ma antibodies reacted with the cytoplasm of the tumor cells; no reactivity was identified with normal human IgG antibodies.
- Ma antigens was also examined in frozen or paraffin embedded tumors, including 53 tumors from patients without paraneoplastic syndromes and 13 tumors from patients with other antibody associated paraneoplastic symptoms: none reacted with anti-Ma antibodies.
- the cDNA sequence (SEQ ID NO:3, shown in FIG. 1) revealed an open reading frame (ORF) with two putative initiation AUG codons separated by one codon. The first of these, at nucleotide 272, is likely to be the translation initiatior codon as it most closely fits the Kozak consensus rule (Kozak, M., Nuci. Acids Res. 15:8125-8148 (1987)).
- the ORF extends until the first in-frame stop codon at nucleotide 1258 and encodes a protein of 330 amino acids (SEQ ID NO:4, FIG. 1) with a predicted molecular mass of 36.8 kDa. We called this gene product, Ma1.
- the cDNA clone includes 5′ non-coding sequence and a 3′ polyadenylation signal (GenBank AF037364, shown in FIG. 1 as SEQ ID NO:3).
- GenBank AF037364 shown in FIG. 1 as SEQ ID NO:3
- a search of the EMBL/GenBank databases revealed that Ma1 cDNA nucleotides 272 to 546 had 97% identity with a human CpG island DNA genomic fragment (GenBank HS19A6R) (Cross, S.H. et al, Nature Genet. 6:236-244 (1994)), and nucleotides 794 to 1230 had 98% homology to cDNA clones derived from a human colon carcinoma cell line (GenBank AA314009) (Adams, M.D.
- Hybridization of an Ma1 specific oligonucleotide probe to Northern blots of mRNA from multiple human tissues showed that Ma1 mRNA was expressed by brain and testis, but not by placenta, lung, liver, spleen, thymus, prostate, ovary, small intestine, colon or peripheral blood leukocytes.
- the blots revealed a single band in both brain and testis of approximately 2.6 kilobases.
- the faint signal observed in heart, skeletal muscle, kidney and pancreas could represent either a very low level of Ma1 mRNA expression, or a trace of nervous tissue contained in these organs.
- immunohistochemical and immunoblot assays see above, these tissues did not react with anti-Ma serum, indicating no Ma1 protein expression.
- the sera (or CSF when available) of 986 patients with histologically proven cancer that were sent to us for antineuronal antibody testing were used in the study.
- a total of 304 sera were used as controls; these controls included patients with cancer and paraneoplastic syndromes (45 PLE and tumors other than testicular cancer [13 anti-Hu positive]; 23 anti-Hu positive encephalomyelitis-sensory neuronopathy; 20 anti-Yo associated cerebellar degeneration; 5 Lambert-Eaton myasthenic syndrome, all positive for P/Q-type VGCC antibodies; 6 anti-Ri associated cerebellar ataxia and opsoclonus; and 9 myasthenia gravis and thymoma), patients with cancer but without paraneoplastic syndromes (44 testicular cancer; 10 colon cancer; 10 ovarian cancer; 21 breast cancer), and patients with miscellaneous disorders (41 multiple sclerosis; 35 systemic lupus erythematosus), and 24 normal individuals. All sera were kept frozen
- Tumor tissues were provided by the referring physicians and by the Tumor Procurement Service at Memorial Sloan-Kettering Cancer Center. They included: 4 testicular tumors from patients with PLE-BE; 45 from patients without paraneoplastic syndromes (25 testicular germ cell tumors, 5 colon, 4 breast, 3 lung, 2 parotid gland and 6 SCLC), and 8 from patients with other paraneoplastic syndromes (4 SCLC, 3 ovary, 1 bladder).
- Normal human tissues and Wistar rats tissues were obtained as reported (Dalmau, J. et al., Am. J. Pathol. 141:881-6 (1992)), and kept at ⁇ 70° C. Other samples from the same tissues were embedded in “Optimal Cutting Temperature” medium (OCT, Miles Inc, USA) and snap frozen in isopentane chilled by liquid nitrogen.
- Intrathecal synthesis of Ta antibodies was calculated by the Schüller's formula (Schuuler, E., in Trends in Neuroimmunology (Marrosu, M. G., Cianchetti, C., and Tabolato, B., eds), Plenum Press, New York, 1990, pp. 3-12).
- a ratio of intrathecal antibody specific activity (ASA)/serum ASA>2 was considered a positive intrathecal synthesis.
- a ⁇ ZAP human cerebellar library (Stratagene, La Jolla, Calif.) was screened at a density of 5 ⁇ 104 pfu/150 mm plate. After 4 hours of growth at 42° C. plaques were overlaid with nitrocellulose filters soaked in 10 mM isopropyl b-D-thiogalactopyranoside (IPTG) and incubated for 12 hours at 37° C. Filters were removed, blocked with 1% bovine serum albumin in phosphate buffered saline (PBS), and incubated with the patient's serum (diluted 1:1000) for 2 hours at room temperature. Positive phage colonies were identified and purified by several rounds of antibody screening, followed by subcloning into pBluescript using the in vivo excision phage rescue protocol (Stratagene).
- Double-stranded Ma2 cDNA was purified using the Qiagen plasmid midi-prep system (Qiagen, Santa Clarita, Calif.) and sequenced on both strands. Sequence analysis using internal oligonucleotide primers, as well as SK and KS primers was performed with an automated DNA sequencer (Applied Biosystems, model 377) using the dye terminator fluorescence method (Lee, L. G. et al, Nuci. Acids Res. 20:2471-2483 (1992)).
- Fusion protein, E. coli protein, and proteins from human and rat tissues were obtained as previously described (Dalmau, J. et al., Am. J. Pathol. 141:881-6 (1992); Manley, G. T. et al., Ann. Neurol. 38:102-110 (1995)), resolved by 10% SDS-polyacrylamide gel electrophoresis, and transferred to nitrocellulose. Nitrocellulose strips were then incubated with the patients sera (diluted 1:1,000) and the reactivity demonstrated by an enhanced chemiluminescence method (Amersham, Arlington, Ill.).
- oligonucleotide probes were end-labeled with [g- 32 P] ATP using T4 polynucleotide kinase, and purified over a G-25 sephadex column.
- probe for Ma2 the following oligonucleotide was used: 5′-GGGAATGGCCGAGACATC-3′ (SEQ ID NO:5) (cDNA base pairs 234-217), and as probe for ⁇ -actin, the following oligonucleotide was used: 5′-GTCTTTGCGGATGTCCACG-3′ (SEQ ID NO:2).
- CSF abnormal, indicates elevated proteins, pleocytosis, or both. In all patients, the CSF cytology was negative for cancer cells.
- Ta antibodies were not identified in 304 control sera, including patients with cancer and paraneoplastic syndromes (45 PLE and tumors other than testicular cancer [13 anti-Hu positive]; 23 anti-Hu positive encephalomyelitis-sensory neuronopathy; 20 anti-Yo associated cerebellar degeneration; 5 Lambert-Eaton myasthenic syndrome, all positive for P/Q-type VGCC antibodies; 6 anti-Ri associated cerebellar ataxia and opsoclonus; and 9 myasthenia gravis and thymoma), patients with cancer but without paraneoplastic syndromes (44 testicular cancer; 10 colon cancer; 10 ovarian cancer; 21 breast cancer), and patients with miscellaneous disorders (41 multiple sclerosis; 35 systemic lupus erythematosus), and 24 normal individuals (anti-Hu: see Szabo, A.
- the screening of a ⁇ ZAP human cerebellar library with the serum of a patient resulted in the isolation of a positive clone, which was recovered by subcloning in pBluescript.
- the resulting plasmid (p561A) contained an insert of 614 bp.
- Sequence analysis revealed the presence of an incomplete open reading frame of 195 amino acids, with a predicted molecular mass of 21.9 kDa (GenBank AF037365, shown in FIG. 2 as SEQ ID NO:6).
- the nucleic acid sequence (SEQ ID NO:6) and predicted amino acid sequence (SEQ ID NO:7) are shown in FIG. 2.
- a stop codon at 586 bp is almost immediately followed by an apparent polyadenylation signal.
- the methionines at amino acids 12 and 21 do not closely fit the Kozak consensus rule for initiation codons making it unlikely that the clone is complete at the 5′ end.
- the protein expressed by this cDNA was called, Ma2.
- Ma2 was found that the cDNA sequence of Ma2 is partially homologous to Ma1 (FIGS. 3 A and 3 B), the paraneoplastic antigen expressed in brain and testis (see Example 1).
- a search of the GenBank databases revealed that the Ma2 cDNA had 84% homology to a human cDNA clone derived from RNA extracted from demyelinating lesions of a patient with multiple sclerosis (GenBank N47784). Further analysis showed that the area of highest homology (95%) is within the putative protein coding region of Ma2 and in fact, accounting for sequencing errors, the 2 clones are likely identical in this region.
- the N47784 clone has a potential ORF that extends beyond the Ma2 stop codon.
- Ma2 was found to have 60% homology to a cDNA clone isolated from adult mouse testis (GenBank 918103).
- Ma2 corresponds to the 40 kDa neuronal protein identified by Ta antibodies.
- immunoblots of neuronal proteins were incubated with anti-Ta sera preabsorbed with Ma2.
- the ratio of intrathecal ASA/serum ASA of Ta antibodies was 0.74, 4.4, 6.2, 16.9, and 23.5, consistent with a positive intrathecal synthesis (>2) in 4 of 5 patients.
- Ma2 is Expressed By Normal Brain and By the Tumor of Patients With PLE-BE
- Northern blot analysis of mRNA extracted from multiple human tissues showed that Ma2 mRNA is expressed by brain, but not by placenta, lung, liver, spleen, thymus, prostate, ovary, testis, small intestine, colon or peripheral blood leukocytes.
- the Northern blots revealed a single transcript expressed in brain of approximately 6,500 kilobases.
- Immunohistochemical and Western blot analysis of the same tissues, using biotinylated anti-Ta IgG as a probe, showed that only brain expresses Ma2 reactivity.
- the tumors of 4 patients with PLE-BE and Ta antibodies were available in formalin-fixed, paraffin-embedded blocks. After tissue deparaffination and antigen retrieval, all 4 tumors showed reactivity with anti-Ta IgG. No reactivity was observed when the IgG had been preabsorbed with Ma2 protein. Results were similar with sections or fat hippocampus. No Ma2 reactivity was expressed by 53 diverse tumors (including 25 testicular cancers) from patients without paraneoplastic syndromes or with other paraneoplastic disorders.
- Ma1 and Ma2 are Targets of Immunological Responses Associated With Different Profiles of Neurologic Symptoms and Tumors
- Ma3 is 833 nucleotides long, encoding a fusion protein of 21 kilodaltons.
- Ma4 is 1574 nucleotides long, encoding a fusion protein of 36 kilodaltons.
- Ma5 is 2248 nucleotides long, encoding a fusion protein of 56 kilodaltons.
- the fusion proteins are those proteins expressed by thecDNA clones in pbluescript, which is a fusion between the clone and the 5′-end of the ⁇ -galactosidase gene.
- the cDNA for Ma3, Ma4 and Ma5 have been deposited in Genbank as AF083114 (Ma3, shown in FIG. 5 as SEQ ID NO:8), AF083115 (Ma4, shown in FIGS. 6A-6B as SEQ ID NO:10), and AF083116 (Ma5, shown in FIGS. 7A-7B as SEQ ID NO:12).
- the putative encoded polypeptides for Ma3, Ma4 and Ma5 are shown in FIGS. 5 (SEQ ID NO:9), 6 A- 6 B (SEQ ID NO:11) and 7 A- 7 B (SEQ ID NO:13), respectively.
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Abstract
Description
TABLE 1 |
Clinical Features of 4 Patients with Paraneoplastic Syndromes |
Time | |||||||
from PNS | Tumor, Stage | ||||||
Patient, | to tumor | First neurological | Paraneoplastic | (Expression of | Neurological | ||
Sex, age | diagnosis | symptom(s) | syndrome | Ma Ags) | treatment | | Autopsy |
Patient | |||||||
1 | 6 months | Gait difficulty, | Pancerebellar | Parotid, limited. | IVIg, | Stable, 2 | — |
F, 63 | poor arm | syndrome (unable to | (Ma Ag+) | Protein A column | years after | ||
coordination, | walk), dysphagia, | first | |||||
slurred speech, | oscillopsia, absent | symptom | |||||
head tremor | reflexes (both knees | ||||||
and right ankle). | |||||||
Vibratory loss in | |||||||
toes. | |||||||
|
Preceded | Ataxia of | Cerebellar | Breast, extensive. | None | Dead, from | Severe loss of Purkinje |
F, 63 | (? Months) | extremities | dysfunction | (Ma Ag+) | systemic | cells & Bergmann gliosis. | |
cancer | complica- | Inflammatory infiltrates of | |||||
reoccurence | tions | T cells in the cerebellar | |||||
white matter. | |||||||
Patient 3 | 1 year | Dysphagia | Dysphagia, mild | Large-cell cancer | Tumor | Lost to | — |
M, 58 | proximal weakness, | of the lung, | resection | follow-up | |||
absent ankle reflexes, | limited. | ||||||
decreased vibratory | (Ma Ag, not | ||||||
and temperature | studied) | ||||||
sensation in feet, | |||||||
impotence. | |||||||
Patient 4 | 11 months | Diplopia, | Abolished vertical | Colon, limited. | IVIg, Plasma | Dead, from | Neuronal loss & gliosis |
F, 58 | unsteadiness, | eye movements; | (Ma Ag+) | exchange, | neurologic | involving: brainstem, | |
pseudobulbar | limited adduction of | Prednisone | disease | Purkinje cells, the dentate | |||
affect | left eye, dysarthria, | nucleus of the cerebellum. | |||||
myokymia and | T-cell infiltrates & micro- | ||||||
decreased sensation | glial nodules: brainstem | ||||||
on left side of the | (mainly medulla), cerebel- | ||||||
face, wide-base gait. | lar white matter, hypothala- | ||||||
Mild cognitive | mus, substantia innominata. | ||||||
deficit. | |||||||
PNS: Paraneoplastic symptoms; | |||||||
Ma Ags: Ma antigens; | |||||||
IVIg: Intravenous immunoglobulin |
TABLE 2 |
Paraneoplastic Symptoms in 20 Patients with Testicular Cancer |
Ta | Ta | ||
antibodies (+) | antibodies (−) | ||
Limbic encephalitis* | 8 | 1 | ||
Brainstem** | 2 | 2 | ||
Cerebellum | 0 | 1 | ||
Basal ganglia dysfunction | 0 | 1 | ||
Sensory neuropathy | 0 | 3 | ||
Optic neuritis-myelitis | 0 | 1 | ||
Motor neuron syndrome | 0 | 1 | ||
*Two (2) patients also had brainstem dysfunction, and another 2 had severe hypothalamic involvement. | ||||
**Prominent brainstem dysfunction. |
TABLE 3 |
Clinical Features of 10 Patients with Paraneoplastic Symptoms Associated with Ta Antibodies |
CNS Diagnostic | Tumor | Tumor | |||||||
# | Sex | Age | First Symptoms | Syndrome | Tests | Diagnosis | Type | Treatment | Status |
1 | M | 28 | Resting tremor, slow | Basal | CT: normal | 1 year prior | NSGCT | orchiectomy, | Neurology: stable |
mentation, anxiety, | ganglia, | *CSF: abnormal | to the ND | plasma exchange, | Tumor: NED (3 years) | ||||
irritability, depression, | PLE | corticosteroids | |||||||
dystonia, seizures, | |||||||||
memory problems | |||||||||
2 | M | 45 | Depression, memory | PLE | **MRI: abnormal | 3 years | NSGCT | orchiectomy, | Neurology stable; |
changes, seizures, | CSF: normal | after the | chemotherapy | Tumor: NED (9 years) | |||||
weight gain (20 lbs) | Brain biopsy: PLE | ND | |||||||
3 | M | 26 | Memory loss, seizures | PLE | MRI: abnormal | 9 months | NSGCT | orchiectomy, | Neurology: remission; |
CSF: abnormal | after the | chemotherapy | Tumor: NED (3 years) | ||||||
Brain biopsy: PLE | ND | ||||||||
4 | M | 37 | Severe memory loss, | PLE, BE | MRI: abnormal | 2 months | Seminoma | orchiectomy, | Neurology: remission; |
mild brainstem signs, | CSF: abnormal | after the | chemotherapy, | Tumor: metastases | |||||
hypersomnia | ND | corticosteroids | |||||||
5 | M | 22 | Seizures (left facial | PLE | MRI: abnormal | 6 months | MGCT | orchiectomy, | Died of neurological |
twitching and abnormal | CSF: abnormal, | after the | chemotherapy, | deterioration | |||||
taste in mouth) | Brain biopsy: PLE | ND | carbamazepine | ||||||
6 | M | 28 | Hallucinations, seizures | PLE, | MRI: abnormal | 6 months | MGCT | orchiectomy, | Died of complications of |
(dejà vu), memory loss, | cerebellar | CSF: abnormal | after the | chemotherapy | chemotherapy | ||||
hyperthermia | ND | ||||||||
7 | M | 45 | Ataxia, dysarthria | BE, | MRI: normal | 6 months | Seminoma | orchiectomy, | Neurology: partial |
cerebellar | CSF: normal | after the | radiation, | improvement | |||||
ND | carbamazepine | Tumor: NED (3 years) | |||||||
8 | M | 28 | Visual/auditory | PLE, BE | MRI: abnormal | 7 months | NSGCT | orchiectomy, | Neurology: |
hallucinations, | CSF: abnormal | prior to the | steroids, IV Ig | deterioration; | |||||
confusion, eye motility | Brain biopsy: PLE | ND | Tumor: NED (9 months) | ||||||
disfunction, memory | |||||||||
loss, hyperthermia | |||||||||
9 | M | 32 | Diplopia, dysarthria, | BE, | MRI: normal | 12 months | Seminoma | orchiectomy | Neurology: stable |
oscillopsia | cerebellar | CSF: normal | after the | Tumor: NED (4 months) | |||||
ND | |||||||||
10 | M | 38 | Lethargy, loss of libido, | PLE, | MRI: abnormal | 5 months | Seminoma | orchiectomy, | Neurology: mild |
diabetes insipidus, | dienceph- | CSF: abnormal | after the | dexamphetamine, | improvement | ||||
hypothyroidism, urinary | alon, | ND | IV Ig, | Tumor: NED (3 months) | |||||
incontinence, mutism, | hyopthal- | corticosteroids | |||||||
hypersomnia, | amus | ||||||||
Decreased voluntary | |||||||||
movements | |||||||||
ND: Neurologic disease; | |||||||||
NSGCT: Non-seminomatous germ-cell tumor; | |||||||||
MGCT: mixed germ-cell tumor; | |||||||||
PLE: paraneoplastic limbic encephalitis; | |||||||||
BE: brainstem encephalitis; | |||||||||
IV Ig: Intravenous immunoglobulin; | |||||||||
NED: no evidence of disease (cancer). | |||||||||
(*)CSF: abnormal, indicates elevated proteins, pleocytosis, or both. In all patients, the CSF cytology was negative for cancer cells. | |||||||||
(**): MRI of the head: abnormalities on T2-weighted sequences involving one or both temporal lobes (n = 7), suprasellar-diencephalic regio (n = 3), and uptake of gadolinium in temporal or diencephalic regions (n = 3). |
SEQUENCE LISTING |
<160> NUMBER OF SEQ ID NOS: 14 |
<210> SEQ ID NO 1 |
<211> LENGTH: 18 |
<212> TYPE: DNA |
<213> ORGANISM: homo sapiens |
<400> SEQUENCE: 1 |
gaaacccaag gacacggg 18 |
<210> SEQ ID NO 2 |
<211> LENGTH: 19 |
<212> TYPE: DNA |
<213> ORGANISM: homo sapiens |
<400> SEQUENCE: 2 |
gtctttgcgg atgtccacg 19 |
<210> SEQ ID NO 3 |
<211> LENGTH: 2139 |
<212> TYPE: DNA |
<213> ORGANISM: homo sapiens |
<220> FEATURE: |
<221> NAME/KEY: CDS |
<222> LOCATION: (272)...(1258) |
<221> NAME/KEY: misc_feature |
<222> LOCATION: (1)...(2139) |
<223> OTHER INFORMATION: n = A,T,C or G |
<400> SEQUENCE: 3 |
cgaggagcga cggccggacc cagacccaga cgcaagatgg cgacggccgc gtgactgcct 60 |
cagcgtcccc gagctcggct ccgagtgcac ctacggactg actgtggggg cagagaaggg 120 |
cgagatcagg actctgtctt tgttaatcgt gactgcatga aggtcgcctc cctcgggcct 180 |
acttggtggg agtgtctggt attgttctaa ggccaggagc acggtgagcc acagtctgtt 240 |
ggtagaattt ggcgtcttga tagttgagaa a atg gcg atg aca ctg ttg gaa 292 |
Met Ala Met Thr Leu Leu Glu |
1 5 |
gac tgg tgc cgg ggg atg gat gtg aac tcc cag aga act ctg tta gtc 340 |
Asp Trp Cys Arg Gly Met Asp Val Asn Ser Gln Arg Thr Leu Leu Val |
10 15 20 |
tgg ggc atc cca gtg aac tgt gat gag gct gaa atc gaa gag acc ctc 388 |
Trp Gly Ile Pro Val Asn Cys Asp Glu Ala Glu Ile Glu Glu Thr Leu |
25 30 35 |
cag gct gcg atg ccc cag gtc tcc tac cga atg ctt ggg aga atg ttc 436 |
Gln Ala Ala Met Pro Gln Val Ser Tyr Arg Met Leu Gly Arg Met Phe |
40 45 50 55 |
tgg agg gaa gaa aat gcg aaa gca gcc tta tta gag ctc act ggc gct 484 |
Trp Arg Glu Glu Asn Ala Lys Ala Ala Leu Leu Glu Leu Thr Gly Ala |
60 65 70 |
gta gat tac gcc gcg atc ccc agg gag atg ccg ggc aaa gga ggg gtc 532 |
Val Asp Tyr Ala Ala Ile Pro Arg Glu Met Pro Gly Lys Gly Gly Val |
75 80 85 |
tgg aaa gtg tta ttt aag ccc cca act tct gat gct gaa ttt tta gaa 580 |
Trp Lys Val Leu Phe Lys Pro Pro Thr Ser Asp Ala Glu Phe Leu Glu |
90 95 100 |
aga ttg cac ctc ttc cta gct aga gag ggg tgg acc gtg caa gat gtt 628 |
Arg Leu His Leu Phe Leu Ala Arg Glu Gly Trp Thr Val Gln Asp Val |
105 110 115 |
gcc cgt gtc ctt ggg ttt cag aac cct act ccg acc ccg ggc cca gag 676 |
Ala Arg Val Leu Gly Phe Gln Asn Pro Thr Pro Thr Pro Gly Pro Glu |
120 125 130 135 |
atg cca gca gag atg cta aac tat att ttg gat aat gtt att cag cct 724 |
Met Pro Ala Glu Met Leu Asn Tyr Ile Leu Asp Asn Val Ile Gln Pro |
140 145 150 |
ctt gtt gag tcc ata tgg tac aag agg ctg aca ctt ttc tcg ggg aag 772 |
Leu Val Glu Ser Ile Trp Tyr Lys Arg Leu Thr Leu Phe Ser Gly Lys |
155 160 165 |
gga cat ccc agg gcc tgg aga gga aac ttt gat ccc tgg ctg gag cac 820 |
Gly His Pro Arg Ala Trp Arg Gly Asn Phe Asp Pro Trp Leu Glu His |
170 175 180 |
act aat gag gtc cta gag gag tgg cag gtg tcc gat gta gaa aag agg 868 |
Thr Asn Glu Val Leu Glu Glu Trp Gln Val Ser Asp Val Glu Lys Arg |
185 190 195 |
cgg cgg ttg atg gag agt ctt aga ggc ccc gcc gct gat gtt att cgc 916 |
Arg Arg Leu Met Glu Ser Leu Arg Gly Pro Ala Ala Asp Val Ile Arg |
200 205 210 215 |
atc ctt aag tcc aac aac ccc gcg ata acc act gcc gaa tgc ctg aag 964 |
Ile Leu Lys Ser Asn Asn Pro Ala Ile Thr Thr Ala Glu Cys Leu Lys |
220 225 230 |
gcg ctt gag cag gtg ttt ggg agc gtt gag agc tct agg gat gcc cag 1012 |
Ala Leu Glu Gln Val Phe Gly Ser Val Glu Ser Ser Arg Asp Ala Gln |
235 240 245 |
atc aaa ttt ctg aac act tat cag aac ccg gga gaa aaa ttg tct gct 1060 |
Ile Lys Phe Leu Asn Thr Tyr Gln Asn Pro Gly Glu Lys Leu Ser Ala |
250 255 260 |
tat gtc att cgt ctg gag cct ctg cta cag aag gtg gta gag aag ggg 1108 |
Tyr Val Ile Arg Leu Glu Pro Leu Leu Gln Lys Val Val Glu Lys Gly |
265 270 275 |
gcc att gat aaa gat aat gtg aac cag gcc cgc cta gag cag gtc att 1156 |
Ala Ile Asp Lys Asp Asn Val Asn Gln Ala Arg Leu Glu Gln Val Ile |
280 285 290 295 |
gcc ggg gcc aac cac agc ggg gcc atc cga agg cag ctg tgg ctt acc 1204 |
Ala Gly Ala Asn His Ser Gly Ala Ile Arg Arg Gln Leu Trp Leu Thr |
300 305 310 |
ggg gct ggg gaa ggg cca ggc ccc aaa cct ctt tca gtt gct ggt gca 1252 |
Gly Ala Gly Glu Gly Pro Gly Pro Lys Pro Leu Ser Val Ala Gly Ala |
315 320 325 |
gat ccg tgaggaggaa gcccagggag gaggaggagg aggctgaggc cacccttctg 1308 |
Asp Pro |
cagttaggcc tggaagggca cttctgagtg ccaggaaagg cagctttagt gcagacctag 1368 |
atcacagcta cttttcttgt ccctgtgggg tcttacagat gtgtctctga gtagtaaagg 1428 |
cttagccttg ttctgttttg ttgttttttg gaggggaagg ttagtcaggc ctgagtattc 1488 |
atgtaacatt ctaaaattgt gccagcgagc accgtgaacg actgcaatgc aagcgggtct 1548 |
tgctggctaa aatgcccagg taaagggttg gttggacaca gcgcttagtg cacgctgtca 1608 |
tcatggacat cataatcagt tgtgaaaaac acgcgaacct atgacacttc ttattccaca 1668 |
ctgaatgtga aattgcatgt tcagatgttt nactacgagg cctggctcac aggaagtgtt 1728 |
cagtaaaagt atgcactgtt agattactga taacgcggat agatttttgt ttaccataaa 1788 |
ttgttccaga tttatattaa tggaaggaag tgtgcattta ttagctatta ctcaacttta 1848 |
caatgcaaac atcttatttc tcatctttaa acatgtcgac cagtttaatt gaaaagtatt 1908 |
ctgagactgc aaaatggggt gttaaaaaat actgcagtta cggagctgtg taaaccagtt 1968 |
tctcattgca taagatacag atgtaaattg catggagagg ttgatatgca cctgtacagt 2028 |
aattcactcc cccatttcac ttctttgtca gagaatagtt cttgttcata ctgagtgttc 2088 |
taaatttgaa gttatatata caaattaaaa tattttaaaa aaaaaaaaaa g 2139 |
<210> SEQ ID NO 4 |
<211> LENGTH: 329 |
<212> TYPE: PRT |
<213> ORGANISM: homo sapiens |
<400> SEQUENCE: 4 |
Met Ala Met Thr Leu Leu Glu Asp Trp Cys Arg Gly Met Asp Val Asn |
1 5 10 15 |
Ser Gln Arg Thr Leu Leu Val Trp Gly Ile Pro Val Asn Cys Asp Glu |
20 25 30 |
Ala Glu Ile Glu Glu Thr Leu Gln Ala Ala Met Pro Gln Val Ser Tyr |
35 40 45 |
Arg Met Leu Gly Arg Met Phe Trp Arg Glu Glu Asn Ala Lys Ala Ala |
50 55 60 |
Leu Leu Glu Leu Thr Gly Ala Val Asp Tyr Ala Ala Ile Pro Arg Glu |
65 70 75 80 |
Met Pro Gly Lys Gly Gly Val Trp Lys Val Leu Phe Lys Pro Pro Thr |
85 90 95 |
Ser Asp Ala Glu Phe Leu Glu Arg Leu His Leu Phe Leu Ala Arg Glu |
100 105 110 |
Gly Trp Thr Val Gln Asp Val Ala Arg Val Leu Gly Phe Gln Asn Pro |
115 120 125 |
Thr Pro Thr Pro Gly Pro Glu Met Pro Ala Glu Met Leu Asn Tyr Ile |
130 135 140 |
Leu Asp Asn Val Ile Gln Pro Leu Val Glu Ser Ile Trp Tyr Lys Arg |
145 150 155 160 |
Leu Thr Leu Phe Ser Gly Lys Gly His Pro Arg Ala Trp Arg Gly Asn |
165 170 175 |
Phe Asp Pro Trp Leu Glu His Thr Asn Glu Val Leu Glu Glu Trp Gln |
180 185 190 |
Val Ser Asp Val Glu Lys Arg Arg Arg Leu Met Glu Ser Leu Arg Gly |
195 200 205 |
Pro Ala Ala Asp Val Ile Arg Ile Leu Lys Ser Asn Asn Pro Ala Ile |
210 215 220 |
Thr Thr Ala Glu Cys Leu Lys Ala Leu Glu Gln Val Phe Gly Ser Val |
225 230 235 240 |
Glu Ser Ser Arg Asp Ala Gln Ile Lys Phe Leu Asn Thr Tyr Gln Asn |
245 250 255 |
Pro Gly Glu Lys Leu Ser Ala Tyr Val Ile Arg Leu Glu Pro Leu Leu |
260 265 270 |
Gln Lys Val Val Glu Lys Gly Ala Ile Asp Lys Asp Asn Val Asn Gln |
275 280 285 |
Ala Arg Leu Glu Gln Val Ile Ala Gly Ala Asn His Ser Gly Ala Ile |
290 295 300 |
Arg Arg Gln Leu Trp Leu Thr Gly Ala Gly Glu Gly Pro Gly Pro Lys |
305 310 315 320 |
Pro Leu Ser Val Ala Gly Ala Asp Pro |
325 |
<210> SEQ ID NO 5 |
<211> LENGTH: 18 |
<212> TYPE: DNA |
<213> ORGANISM: homo sapiens |
<400> SEQUENCE: 5 |
gggaatggcc gagacatc 18 |
<210> SEQ ID NO 6 |
<211> LENGTH: 615 |
<212> TYPE: DNA |
<213> ORGANISM: homo sapiens |
<220> FEATURE: |
<221> NAME/KEY: CDS |
<222> LOCATION: (1)...(585) |
<400> SEQUENCE: 6 |
ccc ctg gca ctg tta gag gac tgg tgc agg ata atg agt gtg gat gag 48 |
Pro Leu Ala Leu Leu Glu Asp Trp Cys Arg Ile Met Ser Val Asp Glu |
1 5 10 15 |
cag aag tca ctg atg gtt acg ggg ata ccg gcg gac ttt gag gag gct 96 |
Gln Lys Ser Leu Met Val Thr Gly Ile Pro Ala Asp Phe Glu Glu Ala |
20 25 30 |
gag att cag gag gtc ctt cag gag act tta aag tct ctg ggc agg tat 144 |
Glu Ile Gln Glu Val Leu Gln Glu Thr Leu Lys Ser Leu Gly Arg Tyr |
35 40 45 |
aga ctg ctt ggc aag ata ttc cgg aag cag gag aat gcc aat gct gtc 192 |
Arg Leu Leu Gly Lys Ile Phe Arg Lys Gln Glu Asn Ala Asn Ala Val |
50 55 60 |
tta cta gag ctt ctg gaa gat act gat gtc tcg gcc att ccc agt gag 240 |
Leu Leu Glu Leu Leu Glu Asp Thr Asp Val Ser Ala Ile Pro Ser Glu |
65 70 75 80 |
gtc cag gga aag ggg ggt gtc tgg aaa gtg atc ttt aag acc cct aat 288 |
Val Gln Gly Lys Gly Gly Val Trp Lys Val Ile Phe Lys Thr Pro Asn |
85 90 95 |
cag gac act gag ttt ctt gaa aga ttg aac ctg ttt cta gaa aaa gag 336 |
Gln Asp Thr Glu Phe Leu Glu Arg Leu Asn Leu Phe Leu Glu Lys Glu |
100 105 110 |
ggg cag acg gtc tcg ggt atg ttt cga gcc ctg ggg cag gag gcg ttg 384 |
Gly Gln Thr Val Ser Gly Met Phe Arg Ala Leu Gly Gln Glu Ala Leu |
115 120 125 |
tct cca gcc aca gtg ccc tgc atc tca cca gaa tta ctg gcc cat ttg 432 |
Ser Pro Ala Thr Val Pro Cys Ile Ser Pro Glu Leu Leu Ala His Leu |
130 135 140 |
ttg gga cag gca atg gca cat gcg cct cag ccc ctg cta ccc atg aga 480 |
Leu Gly Gln Ala Met Ala His Ala Pro Gln Pro Leu Leu Pro Met Arg |
145 150 155 160 |
tac cgg aaa ctg cga gta ttc tca ggg agt gct gtc cca gcc cca gag 528 |
Tyr Arg Lys Leu Arg Val Phe Ser Gly Ser Ala Val Pro Ala Pro Glu |
165 170 175 |
gaa gag tcc ttt gag gtc tgg ttg gaa cag gcc acg gag ata gtc aaa 576 |
Glu Glu Ser Phe Glu Val Trp Leu Glu Gln Ala Thr Glu Ile Val Lys |
180 185 190 |
gag tgg cct tgaacacaac caaaaaaaaa aaaaaaaaag 615 |
Glu Trp Pro |
195 |
<210> SEQ ID NO 7 |
<211> LENGTH: 195 |
<212> TYPE: PRT |
<213> ORGANISM: homo sapiens |
<400> SEQUENCE: 7 |
Pro Leu Ala Leu Leu Glu Asp Trp Cys Arg Ile Met Ser Val Asp Glu |
1 5 10 15 |
Gln Lys Ser Leu Met Val Thr Gly Ile Pro Ala Asp Phe Glu Glu Ala |
20 25 30 |
Glu Ile Gln Glu Val Leu Gln Glu Thr Leu Lys Ser Leu Gly Arg Tyr |
35 40 45 |
Arg Leu Leu Gly Lys Ile Phe Arg Lys Gln Glu Asn Ala Asn Ala Val |
50 55 60 |
Leu Leu Glu Leu Leu Glu Asp Thr Asp Val Ser Ala Ile Pro Ser Glu |
65 70 75 80 |
Val Gln Gly Lys Gly Gly Val Trp Lys Val Ile Phe Lys Thr Pro Asn |
85 90 95 |
Gln Asp Thr Glu Phe Leu Glu Arg Leu Asn Leu Phe Leu Glu Lys Glu |
100 105 110 |
Gly Gln Thr Val Ser Gly Met Phe Arg Ala Leu Gly Gln Glu Ala Leu |
115 120 125 |
Ser Pro Ala Thr Val Pro Cys Ile Ser Pro Glu Leu Leu Ala His Leu |
130 135 140 |
Leu Gly Gln Ala Met Ala His Ala Pro Gln Pro Leu Leu Pro Met Arg |
145 150 155 160 |
Tyr Arg Lys Leu Arg Val Phe Ser Gly Ser Ala Val Pro Ala Pro Glu |
165 170 175 |
Glu Glu Ser Phe Glu Val Trp Leu Glu Gln Ala Thr Glu Ile Val Lys |
180 185 190 |
Glu Trp Pro |
195 |
<210> SEQ ID NO 8 |
<211> LENGTH: 833 |
<212> TYPE: DNA |
<213> ORGANISM: homo sapiens |
<220> FEATURE: |
<221> NAME/KEY: CDS |
<222> LOCATION: (1)...(448) |
<400> SEQUENCE: 8 |
gga cct cat gca cat agt gca ggc aga caa ccc gtc cat cag tgt aga 48 |
Gly Pro His Ala His Ser Ala Gly Arg Gln Pro Val His Gln Cys Arg |
1 5 10 15 |
aga gtg ttt gga ggc ctt taa gca agt gtt tgg gag cct aga gag ccg 96 |
Arg Val Phe Gly Gly Leu * Ala Ser Val Trp Glu Pro Arg Glu Pro |
20 25 30 |
cag gac agc cca ggt gag gta tct gaa gcc cta tca gga gga agg aga 144 |
Gln Asp Ser Pro Gly Glu Val Ser Glu Ala Leu Ser Gly Gly Arg Arg |
35 40 45 |
gaa ggt ctc agc cta tgt gtt acg gct aga aac cct gct ccg gag agc 192 |
Glu Gly Leu Ser Leu Cys Val Thr Ala Arg Asn Pro Ala Pro Glu Ser |
50 55 60 |
ggt gga gaa acg cgc cat ccc tcg gcg tat tgc gga cca ggt ccg cct 240 |
Gly Gly Glu Thr Arg His Pro Ser Ala Tyr Cys Gly Pro Gly Pro Pro |
65 70 75 |
gga gca ggt cat ggc tgg ggc cac tct taa cca gat gct gtg gtg ccg 288 |
Gly Ala Gly His Gly Trp Gly His Ser * Pro Asp Ala Val Val Pro |
80 85 90 |
gct tag gga gct gaa gga tca ggg ccc gcc ccc cag ctt cct tga gct 336 |
Ala * Gly Ala Glu Gly Ser Gly Pro Ala Pro Gln Leu Pro * Ala |
95 100 105 |
aat gaa ggt aat acg gga aga aga gga gga aga ggc ctc ctt tga gaa 384 |
Asn Glu Gly Asn Thr Gly Arg Arg Gly Gly Arg Gly Leu Leu * Glu |
110 115 120 |
tga gag tat cga aga gcc aga gga acg aga tgg cta tgg ccg ctg gaa 432 |
* Glu Tyr Arg Arg Ala Arg Gly Thr Arg Trp Leu Trp Pro Leu Glu |
125 130 135 |
tca tga ggg aga cga c tgaaaaccac ctgggggcag gacccacagc cagtgggcta 488 |
Ser * Gly Arg Arg |
140 |
agacctttaa aaaatttttt tctttaatgt atgggactga aatcaaacca tgaaagccaa 548 |
ttattgacct tccttccttc cttccttccc tcccttcctc cttctctcct tctctccttt 608 |
tttttttttt tttttaaacc ctgttcttgg gtgggtgtgg gtataatact aagttgagat 668 |
gatatcattt acgggggaag gcgctttgtg aagtaggcct tatttctctt gtcctttcgt 728 |
acagggagga atttgaagta gatagaaacc gacctggatt actccggtct gaactcagat 788 |
cacgtaggac tttaatcgtt gaacaaacga acctttaata gcggg 833 |
<210> SEQ ID NO 9 |
<211> LENGTH: 142 |
<212> TYPE: PRT |
<213> ORGANISM: homo sapiens |
<400> SEQUENCE: 9 |
Gly Pro His Ala His Ser Ala Gly Arg Gln Pro Val His Gln Cys Arg |
1 5 10 15 |
Arg Val Phe Gly Gly Leu Ala Ser Val Trp Glu Pro Arg Glu Pro Gln |
20 25 30 |
Asp Ser Pro Gly Glu Val Ser Glu Ala Leu Ser Gly Gly Arg Arg Glu |
35 40 45 |
Gly Leu Ser Leu Cys Val Thr Ala Arg Asn Pro Ala Pro Glu Ser Gly |
50 55 60 |
Gly Glu Thr Arg His Pro Ser Ala Tyr Cys Gly Pro Gly Pro Pro Gly |
65 70 75 80 |
Ala Gly His Gly Trp Gly His Ser Pro Asp Ala Val Val Pro Ala Gly |
85 90 95 |
Ala Glu Gly Ser Gly Pro Ala Pro Gln Leu Pro Ala Asn Glu Gly Asn |
100 105 110 |
Thr Gly Arg Arg Gly Gly Arg Gly Leu Leu Glu Glu Tyr Arg Arg Ala |
115 120 125 |
Arg Gly Thr Arg Trp Leu Trp Pro Leu Glu Ser Gly Arg Arg |
130 135 140 |
<210> SEQ ID NO 10 |
<211> LENGTH: 1574 |
<212> TYPE: DNA |
<213> ORGANISM: homo sapiens |
<220> FEATURE: |
<221> NAME/KEY: CDS |
<222> LOCATION: (1)...(850) |
<400> SEQUENCE: 10 |
ggt cca ggg aaa ggg ggg tgt ctg gaa ggt gat ctt taa gac ccc taa 48 |
Gly Pro Gly Lys Gly Gly Cys Leu Glu Gly Asp Leu * Asp Pro * |
1 5 10 |
tca gga cac tga gtt tct tga aag att gaa cct gtt tct aga aaa aga 96 |
Ser Gly His * Val Ser * Lys Ile Glu Pro Val Ser Arg Lys Arg |
15 20 25 |
ggg gca gac ggt ctc ggg tat gtt tcg agc cct ggg gca gga ggg cgt 144 |
Gly Ala Asp Gly Leu Gly Tyr Val Ser Ser Pro Gly Ala Gly Gly Arg |
30 35 40 |
gtc tcc agc cac agt gcc ctg cat ctc acc aga att act ggc cca ttt 192 |
Val Ser Ser His Ser Ala Leu His Leu Thr Arg Ile Thr Gly Pro Phe |
45 50 55 60 |
gtt ggg aca ggc aat ggc aca tgc gcc tca gcc cct gct acc cat gag 240 |
Val Gly Thr Gly Asn Gly Thr Cys Ala Ser Ala Pro Ala Thr His Glu |
65 70 75 |
ata ccg gaa act gcg agt att ctc agg gag tgc tgt ccc agc ccc aga 288 |
Ile Pro Glu Thr Ala Ser Ile Leu Arg Glu Cys Cys Pro Ser Pro Arg |
80 85 90 |
gga aga gtc ctt tga ggt ctg gtt gga aca ggc cac gga gat agt caa 336 |
Gly Arg Val Leu * Gly Leu Val Gly Thr Gly His Gly Asp Ser Gln |
95 100 105 |
aga gtg gcc agt aac aga ggc aga aaa gaa aag gtg gct ggc gga aag 384 |
Arg Val Ala Ser Asn Arg Gly Arg Lys Glu Lys Val Ala Gly Gly Lys |
110 115 120 |
cct gcg ggg ccc tgc cct gga cct cat gca cat agt gca ggc aga caa 432 |
Pro Ala Gly Pro Cys Pro Gly Pro His Ala His Ser Ala Gly Arg Gln |
125 130 135 |
ccc gtc cat cag tgt aga aga gtg ttt gga ggc ctt taa gca agt gtt 480 |
Pro Val His Gln Cys Arg Arg Val Phe Gly Gly Leu * Ala Ser Val |
140 145 150 |
tgg gag cct aga gag ccg cag gac agc cca ggt gag gta tct gaa gac 528 |
Trp Glu Pro Arg Glu Pro Gln Asp Ser Pro Gly Glu Val Ser Glu Asp |
155 160 165 170 |
cta tca gga gga agg aga gaa ggt ctc agc cta tgt gtt acg gct aga 576 |
Leu Ser Gly Gly Arg Arg Glu Gly Leu Ser Leu Cys Val Thr Ala Arg |
175 180 185 |
aac cct gct ccg gaa agc ggt gga gaa acg cgc cat ccc tcg gcg tat 624 |
Asn Pro Ala Pro Glu Ser Gly Gly Glu Thr Arg His Pro Ser Ala Tyr |
190 195 200 |
tgc gga cca ggt ccg cct gga gca ggt cat ggc tgg ggc cac tct taa 672 |
Cys Gly Pro Gly Pro Pro Gly Ala Gly His Gly Trp Gly His Ser * |
205 210 215 |
cca gat gct gtg gtg ccg gct tag gga gct gaa gga tca ggg ccc gcc 720 |
Pro Asp Ala Val Val Pro Ala * Gly Ala Glu Gly Ser Gly Pro Ala |
220 225 230 |
ccc cag ctt cct tga gct aat gaa ggt aat acg gga aga aga gga gga 768 |
Pro Gln Leu Pro * Ala Asn Glu Gly Asn Thr Gly Arg Arg Gly Gly |
235 240 245 |
aga ggc ctc ctt tga gaa tga gag tat cga aga gcc aga gga acg aga 816 |
Arg Gly Leu Leu * Glu * Glu Tyr Arg Arg Ala Arg Gly Thr Arg |
250 255 260 |
tgg cta tgg ccg ctg gaa tca tga ggg aga cga c tgaaaaccac 860 |
Trp Leu Trp Pro Leu Glu Ser * Gly Arg Arg |
265 270 |
ctgggggcag gacccacagc cagtgggcta agacctttaa aaaatttttt tctttaatgt 920 |
atgggactga aatcaaacca tgaaagccaa ttattgacct tccttccttc cttcctttcc 980 |
ttcccttcct ccttctctcc ttctctcctc ctctctcctc tcctctcctc tctttccttc 1040 |
cttccttcct tttttctttt tctctttctt ctttatttct tgggtctcac tctcatcacc 1100 |
caggctagag tgcagtggca caaaaatctc ggctcactgc agccttgact tcccaggctc 1160 |
aggctcaggt gatcctcaca ccttagcctc ccaagtacct gggactacag gcacgcacca 1220 |
ccatgcctag ctattctttt gtatttttgg tagagacagg gttttgctgt gttgctcagg 1280 |
ctggtctgga acccctaggc tcaaatgatg tgcccaactc ggcctcccaa agtgctggga 1340 |
ttacaggcat gaaccgccat gcctggccct tgatttttct ttttaagaaa aaaatatcta 1400 |
ggagtttctt agaccctatg tagattatta atgaacaaaa gattaaactc caaatattaa 1460 |
atagtaagcc tgaaggaatc tgaaacactt gtacttccaa ttttctttaa ataatcccaa 1520 |
atagaccaga attggcccat accatagaag aaagaattgg cagtcaaaaa aaaa 1574 |
<210> SEQ ID NO 11 |
<211> LENGTH: 271 |
<212> TYPE: PRT |
<213> ORGANISM: homo sapiens |
<400> SEQUENCE: 11 |
Gly Pro Gly Lys Gly Gly Cys Leu Glu Gly Asp Leu Asp Pro Ser Gly |
1 5 10 15 |
His Val Ser Lys Ile Glu Pro Val Ser Arg Lys Arg Gly Ala Asp Gly |
20 25 30 |
Leu Gly Tyr Val Ser Ser Pro Gly Ala Gly Gly Arg Val Ser Ser His |
35 40 45 |
Ser Ala Leu His Leu Thr Arg Ile Thr Gly Pro Phe Val Gly Thr Gly |
50 55 60 |
Asn Gly Thr Cys Ala Ser Ala Pro Ala Thr His Glu Ile Pro Glu Thr |
65 70 75 80 |
Ala Ser Ile Leu Arg Glu Cys Cys Pro Ser Pro Arg Gly Arg Val Leu |
85 90 95 |
Gly Leu Val Gly Thr Gly His Gly Asp Ser Gln Arg Val Ala Ser Asn |
100 105 110 |
Arg Gly Arg Lys Glu Lys Val Ala Gly Gly Lys Pro Ala Gly Pro Cys |
115 120 125 |
Pro Gly Pro His Ala His Ser Ala Gly Arg Gln Pro Val His Gln Cys |
130 135 140 |
Arg Arg Val Phe Gly Gly Leu Ala Ser Val Trp Glu Pro Arg Glu Pro |
145 150 155 160 |
Gln Asp Ser Pro Gly Glu Val Ser Glu Asp Leu Ser Gly Gly Arg Arg |
165 170 175 |
Glu Gly Leu Ser Leu Cys Val Thr Ala Arg Asn Pro Ala Pro Glu Ser |
180 185 190 |
Gly Gly Glu Thr Arg His Pro Ser Ala Tyr Cys Gly Pro Gly Pro Pro |
195 200 205 |
Gly Ala Gly His Gly Trp Gly His Ser Pro Asp Ala Val Val Pro Ala |
210 215 220 |
Gly Ala Glu Gly Ser Gly Pro Ala Pro Gln Leu Pro Ala Asn Glu Gly |
225 230 235 240 |
Asn Thr Gly Arg Arg Gly Gly Arg Gly Leu Leu Glu Glu Tyr Arg Arg |
245 250 255 |
Ala Arg Gly Thr Arg Trp Leu Trp Pro Leu Glu Ser Gly Arg Arg |
260 265 270 |
<210> SEQ ID NO 12 |
<211> LENGTH: 2230 |
<212> TYPE: DNA |
<213> ORGANISM: homo sapiens |
<220> FEATURE: |
<221> NAME/KEY: CDS |
<222> LOCATION: (28)...(1416) |
<221> NAME/KEY: misc_feature |
<222> LOCATION: (1)...(2230) |
<223> OTHER INFORMATION: n = A,T,C or G |
<400> SEQUENCE: 12 |
ttcgaggaca tgccgttgac cttgtta cag gac tgg tgt cgg ggg gaa cac ctg 54 |
Gln Asp Trp Cys Arg Gly Glu His Leu |
1 5 |
aac acc cgg agg tgc atg ctc atc ctg ggg atc ccc gag gac tgt ggc 102 |
Asn Thr Arg Arg Cys Met Leu Ile Leu Gly Ile Pro Glu Asp Cys Gly |
10 15 20 25 |
gag gat gag ttt gag gag aca ctc cag gag gct tgc agg cac ctg ggc 150 |
Glu Asp Glu Phe Glu Glu Thr Leu Gln Glu Ala Cys Arg His Leu Gly |
30 35 40 |
aga tac agg gtg att ggc agg atg ttt agg agg gag gag aac gcc cag 198 |
Arg Tyr Arg Val Ile Gly Arg Met Phe Arg Arg Glu Glu Asn Ala Gln |
45 50 55 |
gcg att cta ctg gag ctg gca caa gat atc gac tat gct ttg ctc cca 246 |
Ala Ile Leu Leu Glu Leu Ala Gln Asp Ile Asp Tyr Ala Leu Leu Pro |
60 65 70 |
agg gaa ata cca gga aag ggg ggg ccc tgg gaa gtg att gta aaa ccc 294 |
Arg Glu Ile Pro Gly Lys Gly Gly Pro Trp Glu Val Ile Val Lys Pro |
75 80 85 |
cgt aac tca gat ggg gaa ttt ctc aac aga ctg aac cgc ttc tta gag 342 |
Arg Asn Ser Asp Gly Glu Phe Leu Asn Arg Leu Asn Arg Phe Leu Glu |
90 95 100 105 |
gag gag agg cgg acc gtg tca gat atg aac cga gtc ctc ggg tcg gac 390 |
Glu Glu Arg Arg Thr Val Ser Asp Met Asn Arg Val Leu Gly Ser Asp |
110 115 120 |
acc aat tgt tcg gct cca aga gtg act ata tca cca gag ttc tgg acc 438 |
Thr Asn Cys Ser Ala Pro Arg Val Thr Ile Ser Pro Glu Phe Trp Thr |
125 130 135 |
tgg gcc cag act ctg ggg gca gca gtg cag cct ctg cta gaa caa atg 486 |
Trp Ala Gln Thr Leu Gly Ala Ala Val Gln Pro Leu Leu Glu Gln Met |
140 145 150 |
ttg tac cga gaa cta aga gtg ttt tct ggg aac acc ata tcc atc cca 534 |
Leu Tyr Arg Glu Leu Arg Val Phe Ser Gly Asn Thr Ile Ser Ile Pro |
155 160 165 |
ggt gca ctg gcc ttt gat gcc tgg ctt gag cac acc act gag atg cta 582 |
Gly Ala Leu Ala Phe Asp Ala Trp Leu Glu His Thr Thr Glu Met Leu |
170 175 180 185 |
cag atg tgg cag gtg ccc gag ggg gaa aag agg cgg agg ctg atg gaa 630 |
Gln Met Trp Gln Val Pro Glu Gly Glu Lys Arg Arg Arg Leu Met Glu |
190 195 200 |
tgc tta cgg ggc cct gct ctc cag gtg gtc agt ggg ctc cgg gcc agc 678 |
Cys Leu Arg Gly Pro Ala Leu Gln Val Val Ser Gly Leu Arg Ala Ser |
205 210 215 |
aat gct tcc ata act gtg gag gag tgc ctg gct gcc ttg cag cag gtg 726 |
Asn Ala Ser Ile Thr Val Glu Glu Cys Leu Ala Ala Leu Gln Gln Val |
220 225 230 |
ttc gga cct gtg gag agc cat aaa att gcc cag gtg aag ttg tgt aaa 774 |
Phe Gly Pro Val Glu Ser His Lys Ile Ala Gln Val Lys Leu Cys Lys |
235 240 245 |
gcc tat cag gag gca gga gag aaa gta tct agc ttt gtg tta cgt ttg 822 |
Ala Tyr Gln Glu Ala Gly Glu Lys Val Ser Ser Phe Val Leu Arg Leu |
250 255 260 265 |
gaa ccc ctg ctc caa aga gct gta gaa aac aat gtg gta tca cgt aga 870 |
Glu Pro Leu Leu Gln Arg Ala Val Glu Asn Asn Val Val Ser Arg Arg |
270 275 280 |
aac gtg aat cag act cgc ctg aaa cga gtc tta agt ggg gcc acc ctt 918 |
Asn Val Asn Gln Thr Arg Leu Lys Arg Val Leu Ser Gly Ala Thr Leu |
285 290 295 |
cct gac aaa ctc cga gat aag ctt aag ctg atg aaa cag cga agg aag 966 |
Pro Asp Lys Leu Arg Asp Lys Leu Lys Leu Met Lys Gln Arg Arg Lys |
300 305 310 |
cct cct ggt ttc ctg gcc ctg gtg aag ctc ctg cgt gag gag gag gaa 1014 |
Pro Pro Gly Phe Leu Ala Leu Val Lys Leu Leu Arg Glu Glu Glu Glu |
315 320 325 |
tgg gag gcc act tta ggt cca gat agg gag agt ctg gag ggg ctg gaa 1062 |
Trp Glu Ala Thr Leu Gly Pro Asp Arg Glu Ser Leu Glu Gly Leu Glu |
330 335 340 345 |
gta gcc cca agg cca cct gcc agg atc act ggg gtt ggg gca gta cct 1110 |
Val Ala Pro Arg Pro Pro Ala Arg Ile Thr Gly Val Gly Ala Val Pro |
350 355 360 |
ctc cct gcc tct ggc aac agt ttt gat gcg agg cct tcc cag ggc tac 1158 |
Leu Pro Ala Ser Gly Asn Ser Phe Asp Ala Arg Pro Ser Gln Gly Tyr |
365 370 375 |
cgg cgc cgg agg ggc aga ggc caa cac cga agg ggt ggt gtg gca agg 1206 |
Arg Arg Arg Arg Gly Arg Gly Gln His Arg Arg Gly Gly Val Ala Arg |
380 385 390 |
gct ggc tct cga ggc tca aga aaa cgg aaa cgc cac aca ttc tgc tat 1254 |
Ala Gly Ser Arg Gly Ser Arg Lys Arg Lys Arg His Thr Phe Cys Tyr |
395 400 405 |
agc tgt ggg gaa gac ggc cac atc agg gta cag tgc atc aac ccc tcc 1302 |
Ser Cys Gly Glu Asp Gly His Ile Arg Val Gln Cys Ile Asn Pro Ser |
410 415 420 425 |
aac ctg ctc ttg gta aag cag aag aaa cag gct gca gtt gag tcg gga 1350 |
Asn Leu Leu Leu Val Lys Gln Lys Lys Gln Ala Ala Val Glu Ser Gly |
430 435 440 |
aac ggg aac tgg gct tgg gac aag agc cat ccc aag tcc aag gcc aag 1398 |
Asn Gly Asn Trp Ala Trp Asp Lys Ser His Pro Lys Ser Lys Ala Lys |
445 450 455 |
tag gct cgg gag aac agg gcaacatttc ctaccacagc ccaaggagac 1446 |
* Ala Arg Glu Asn Arg |
460 |
aaaagagata ttgggaggag gggaaagaga agcccagaca aacagcagat gagttgagtg 1506 |
gggcagaggg acagggcagc cagaccaagg ccaagcnttc tcacccttng gccagttgga 1566 |
agggactttc agcaaccaag accacctggc aacaggctca gtgggggtca ggtccaggtc 1626 |
cccgaagagg tgctggagag gaaagcaggg agccactgca tccagcacat ggggtgcctg 1686 |
ggcctcagat ggggacccca aagaagcaga agctgaagaa ggtacggctg ggggttctgt 1746 |
cctgctcatc caaccacccc taaataccca ccctgtggac tttgagctga acatgcccac 1806 |
tggcccccag gccacatggg acctggagga gcctacctgg ggcctgcccc tgccagcagg 1866 |
tgccagggct ggtgaggaag agctgggggg cagaggtaaa gccctgcagg ggaggccaca 1926 |
gggtccatcc cgtcttcagg atcatctaca ctgcactagg ggagccccag gaaggcagca 1986 |
ccctggaggc cctgtgccag tgaggacagg agaccctaag gccccgggag cccagtgcca 2046 |
gccagaggtt gtgcaggcaa ggagaccaaa gattgatgag aagaccccca gcaggggtac 2106 |
tgggtacccg gcaggccagt gccctcacag ttgacttgga ccagggtggc tgtgaaggga 2166 |
agtctttgtt gcaaaggagg aggaaaaggg aggacttggt agggttttgt ttcttctgct 2226 |
tggg 2230 |
<210> SEQ ID NO 13 |
<211> LENGTH: 462 |
<212> TYPE: PRT |
<213> ORGANISM: homo sapiens |
<400> SEQUENCE: 13 |
Gln Asp Trp Cys Arg Gly Glu His Leu Asn Thr Arg Arg Cys Met Leu |
1 5 10 15 |
Ile Leu Gly Ile Pro Glu Asp Cys Gly Glu Asp Glu Phe Glu Glu Thr |
20 25 30 |
Leu Gln Glu Ala Cys Arg His Leu Gly Arg Tyr Arg Val Ile Gly Arg |
35 40 45 |
Met Phe Arg Arg Glu Glu Asn Ala Gln Ala Ile Leu Leu Glu Leu Ala |
50 55 60 |
Gln Asp Ile Asp Tyr Ala Leu Leu Pro Arg Glu Ile Pro Gly Lys Gly |
65 70 75 80 |
Gly Pro Trp Glu Val Ile Val Lys Pro Arg Asn Ser Asp Gly Glu Phe |
85 90 95 |
Leu Asn Arg Leu Asn Arg Phe Leu Glu Glu Glu Arg Arg Thr Val Ser |
100 105 110 |
Asp Met Asn Arg Val Leu Gly Ser Asp Thr Asn Cys Ser Ala Pro Arg |
115 120 125 |
Val Thr Ile Ser Pro Glu Phe Trp Thr Trp Ala Gln Thr Leu Gly Ala |
130 135 140 |
Ala Val Gln Pro Leu Leu Glu Gln Met Leu Tyr Arg Glu Leu Arg Val |
145 150 155 160 |
Phe Ser Gly Asn Thr Ile Ser Ile Pro Gly Ala Leu Ala Phe Asp Ala |
165 170 175 |
Trp Leu Glu His Thr Thr Glu Met Leu Gln Met Trp Gln Val Pro Glu |
180 185 190 |
Gly Glu Lys Arg Arg Arg Leu Met Glu Cys Leu Arg Gly Pro Ala Leu |
195 200 205 |
Gln Val Val Ser Gly Leu Arg Ala Ser Asn Ala Ser Ile Thr Val Glu |
210 215 220 |
Glu Cys Leu Ala Ala Leu Gln Gln Val Phe Gly Pro Val Glu Ser His |
225 230 235 240 |
Lys Ile Ala Gln Val Lys Leu Cys Lys Ala Tyr Gln Glu Ala Gly Glu |
245 250 255 |
Lys Val Ser Ser Phe Val Leu Arg Leu Glu Pro Leu Leu Gln Arg Ala |
260 265 270 |
Val Glu Asn Asn Val Val Ser Arg Arg Asn Val Asn Gln Thr Arg Leu |
275 280 285 |
Lys Arg Val Leu Ser Gly Ala Thr Leu Pro Asp Lys Leu Arg Asp Lys |
290 295 300 |
Leu Lys Leu Met Lys Gln Arg Arg Lys Pro Pro Gly Phe Leu Ala Leu |
305 310 315 320 |
Val Lys Leu Leu Arg Glu Glu Glu Glu Trp Glu Ala Thr Leu Gly Pro |
325 330 335 |
Asp Arg Glu Ser Leu Glu Gly Leu Glu Val Ala Pro Arg Pro Pro Ala |
340 345 350 |
Arg Ile Thr Gly Val Gly Ala Val Pro Leu Pro Ala Ser Gly Asn Ser |
355 360 365 |
Phe Asp Ala Arg Pro Ser Gln Gly Tyr Arg Arg Arg Arg Gly Arg Gly |
370 375 380 |
Gln His Arg Arg Gly Gly Val Ala Arg Ala Gly Ser Arg Gly Ser Arg |
385 390 395 400 |
Lys Arg Lys Arg His Thr Phe Cys Tyr Ser Cys Gly Glu Asp Gly His |
405 410 415 |
Ile Arg Val Gln Cys Ile Asn Pro Ser Asn Leu Leu Leu Val Lys Gln |
420 425 430 |
Lys Lys Gln Ala Ala Val Glu Ser Gly Asn Gly Asn Trp Ala Trp Asp |
435 440 445 |
Lys Ser His Pro Lys Ser Lys Ala Lys Ala Arg Glu Asn Arg |
450 455 460 |
<210> SEQ ID NO 14 |
<211> LENGTH: 530 |
<212> TYPE: DNA |
<213> ORGANISM: mus musculus |
<400> SEQUENCE: 14 |
ctgcggtcgt tcttctgccc tcggcgggac gggcgcgggg agcccgggtc tctcctaaac 60 |
cccgcaaagg ctcccggacc tctgcgtgtt aaagagacga gcacgcacat cactgtaagc 120 |
ggcggcgcgg cggcgggcct ggtcgaatta gaatttaaat actctgagca ccatgacact 180 |
gagacttcta gaagactggt gcagagggat ggatatgaat cctcggaaag cactattggt 240 |
tgccggcatc cctccgacct gcggagtggc agacatagag gaggccctgc aggctggcct 300 |
tgctccctta ggggaacaca gactgcttgg gaggatgttc aggagggatg agaacaagaa 360 |
tgtagccctg attgggctta cagtagagac tggcagtgcc tggtccccaa ggaaatacct 420 |
gcaaaaggag gtgtctggag agtgatcttt aagcctcctg atactgatag tgactttttg 480 |
tgcagattaa atgagttttt aaagggggag ggcatgacga tgggtgaatt 530 |
Claims (46)
Priority Applications (4)
Application Number | Priority Date | Filing Date | Title |
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US09/189,527 US6387639B1 (en) | 1998-11-10 | 1998-11-10 | Ma family polypeptides and anti-Ma antibodies |
CA2287545A CA2287545C (en) | 1998-11-10 | 1999-11-10 | Ma family polypeptides and anti-ma antibodies |
JP32017199A JP4402223B2 (en) | 1998-11-10 | 1999-11-10 | Ma family polypeptides and anti-Ma antibodies |
US10/037,860 US7026450B2 (en) | 1998-11-10 | 2002-01-04 | Ma family polypeptides and anti-Ma antibodies |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US09/189,527 US6387639B1 (en) | 1998-11-10 | 1998-11-10 | Ma family polypeptides and anti-Ma antibodies |
Related Child Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US10/037,860 Division US7026450B2 (en) | 1998-11-10 | 2002-01-04 | Ma family polypeptides and anti-Ma antibodies |
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Publication Number | Publication Date |
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US6387639B1 true US6387639B1 (en) | 2002-05-14 |
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ID=22697712
Family Applications (2)
Application Number | Title | Priority Date | Filing Date |
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US09/189,527 Expired - Lifetime US6387639B1 (en) | 1998-11-10 | 1998-11-10 | Ma family polypeptides and anti-Ma antibodies |
US10/037,860 Expired - Lifetime US7026450B2 (en) | 1998-11-10 | 2002-01-04 | Ma family polypeptides and anti-Ma antibodies |
Family Applications After (1)
Application Number | Title | Priority Date | Filing Date |
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US10/037,860 Expired - Lifetime US7026450B2 (en) | 1998-11-10 | 2002-01-04 | Ma family polypeptides and anti-Ma antibodies |
Country Status (3)
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US (2) | US6387639B1 (en) |
JP (1) | JP4402223B2 (en) |
CA (1) | CA2287545C (en) |
Cited By (16)
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WO2003073104A2 (en) * | 2002-02-26 | 2003-09-04 | Evotec Neurosciences Gmbh | Diagnostic and therapeutic use of ma onconeuronal antigens for neurodegenerative diseases |
US20030232399A1 (en) * | 2000-06-14 | 2003-12-18 | Robertson John Forsyth Russell | Cancer detection methods and reagents |
US20060094069A1 (en) * | 2002-11-14 | 2006-05-04 | Robertson John Forsyth R | Tumour marker proteins and uses thereof |
US20060275801A1 (en) * | 2005-04-29 | 2006-12-07 | Henkin Robert I | Methods for detection of biological substances |
US20080108084A1 (en) * | 1998-12-10 | 2008-05-08 | University Of Nottingham | Cancer Detection Methods and Reagents |
US7402403B1 (en) * | 1998-05-11 | 2008-07-22 | Oncimmune Limited | Tumour markers |
US20080213921A1 (en) * | 2006-09-13 | 2008-09-04 | Robertson John F R | Immunoassay Methods |
US20080305476A1 (en) * | 2005-05-27 | 2008-12-11 | Onc-Immune Ltd. | Immunoassay Methods |
US20090176319A1 (en) * | 2007-12-24 | 2009-07-09 | Onclmmune Limited | Calibrator For Immunoassays |
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US20100227875A1 (en) * | 2005-04-29 | 2010-09-09 | Henkin Robert I | Methods for detection of biological substances |
US20110166166A1 (en) * | 2007-01-31 | 2011-07-07 | Henkin Robert I | Methods for detection of biological substances |
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DE202022104518U1 (en) | 2021-08-10 | 2023-06-20 | Fundació Clínic Per A La Recerca Biomèdica (Fcrb) | Autoantibodies and means for detecting an autoantibody |
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US7026450B2 (en) | 2006-04-11 |
CA2287545A1 (en) | 2000-05-10 |
JP4402223B2 (en) | 2010-01-20 |
JP2000146982A (en) | 2000-05-26 |
US20020123114A1 (en) | 2002-09-05 |
CA2287545C (en) | 2012-03-27 |
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